FIELD
[0001] The present disclosure relates to a radar device for automotive applications and
a method for operating a radar device.
BACKGROUND
[0002] Radar devices are used in automotive applications to detect and locate target objects
such as other vehicles, obstacles or lane boundaries. They may be placed at the front,
at the rear or at the sides of a vehicle. Such radar devices usually comprise a signal
generator to generate a radar signal, an antenna device for illuminating the target
objects with the radar signal and for capturing the radar signal reflected back from
the target objects and a signal receiver to analyze the radar signal reflected back
from the target objects. The information extracted from the reflected radar signal
may then be used for advanced driver's assist system (ADAS) functions, such as emergency
brake assist, adaptive cruise control, lane change assist or the like.
[0003] Antenna devices for automotive applications usually comprise several transmit antennas
and several receive antennas. Usually, the radar circuit is able to vary the individual
signal components of the radar signal that are fed to individual transmit antennas
independently from each other, for example in frequency, amplitude or phase. Likewise,
it is able to analyze the individual signal components captured by the individual
receive antennas independently from each other. Typically, each pair of transmit antenna
and receive antenna defines a propagation channel for the radar signal from the respective
transmit antenna to the target object and back to the respective receive antenna.
When feeding the individual transmit antennas with orthogonal signals that are separable
at the receiver and ensuring that each antenna is able to receive all signals transmitted,
the number of propagation channels that are accessible for signal evaluation amounts
to the product of the number of transmit antennas and the number of receive antennas.
[0004] Typically, the number of individual channels available and the characteristics of
the individual antennas, such as position, gain, or directivity define important radar
parameters such as field of view, angular resolution, or detection range of the radar
device. Therefore, it is necessary to adapt the number of propagation channels and
the antenna characteristics to the position of the radar device on the vehicle and
the targets to be detected. In these circumstances, it is usually the number of available
propagation channels that ultimately limits the performance of the radar device.
[0005] Increasing the number of individual addressable antennas and therefore the number
of available propagation channels usually leads to an increased constructive complexity
of the radar device as it is necessary to provide separate and individually configurable
radar signals for each individual antenna. To keep production costs low, typical radar
devices for automotive applications only comprise a limited amount of individually
addressable antennas, for example three transmit antennas and four receive antennas,
resulting in a total of twelve available propagation channels.
[0006] Accordingly, there is a need to improve the performance of radar devices without
unduly increasing their constructive complexity.
SUMMARY
[0007] The present disclosure provides a radar device for automotive applications and a
method for operating a radar device according to the independent claims. Embodiments
are given in the subclaims, the description and the drawings.
[0008] In one aspect, the present disclosure is directed at a radar device for automotive
applications comprising a radar circuit for transceiving radar signals, a signal processing
device for processing the radar signals, and an antenna device for transducing the
radar signals. The radar circuit is configured to handle a radar signal that has a
first signal portion and a second signal portion, wherein the first signal portion
occupies a first frequency band and the second signal portion occupies a second frequency
band that is separate from the first frequency band. The antenna device comprises
a first antenna element that is part of a first antenna and a second antenna element
that is part of a second antenna, wherein both the first and second antenna element
are coupled to a common signal port of the radar circuit and the radar device is configured
to route both the first signal portion and the second signal portion via the common
signal port between the radar circuit and the antenna device. Furthermore, the antenna
device is configured as a frequency selective antenna device that transduces the first
signal portion via the first antenna element and not via the second antenna element
and that transduces the second signal portion at least via the second antenna element.
The signal processing device is configured to detect from the first signal portion
target reflections via a first propagation channel and to detect from the second signal
portion target reflections via a second propagation channel.
[0009] The present disclosure is based on the idea that the number of individually addressable
antennas and thus the number of propagation channels available for signal processing
may be increased by sharing a common signal port of the radar circuit among antenna
elements of two or more individual antennas of the antenna device. Typical radar devices,
which usually employ radar circuits that are configured as monolithic microwave integrated
circuits (MMICs), only have a limited number of transmit and receive ports that are
each connected to only a single individually addressable antenna. Increasing the number
of individually addressable antennas has to date only been possible by providing additional
signal ports, each of which is connected to a single additional antenna. Therefore,
it has been necessary to either increase the number of ports of the radar circuit
or to combine several radar circuits in a phase coherent manner. Both solutions increase
the complexity of the hardware of the radar device and thus cause considerable additional
costs.
[0010] With the radar device of the present disclosure, it is possible to increase the number
of individually addressable antennas and, for example, the number of propagation channels
that are individually addressable by the radar device with only minimum additional
hardware and thus with only minimal additional costs. The additional channels may,
for example, be used to increase the resolution, such as elevation resolution or azimuth
resolution, of the radar device. Thus, the accuracy of determining an azimuth angle
or an elevation angle of a detected object from the radar signal may be improved.
[0011] The radar circuit is configured to activate dedicated antenna elements, such as the
first antenna element or the second antenna element, by varying or switching its operating
frequency band. Therefore, the full bandwidth of the radar circuit that is routed
via the common signal port may be shared among two or more antenna elements and their
associated antennas. By suitably shaping and positioning the individual antenna elements,
radar parameters of the radar device, like field of view, gain, signal-to-noise ratio,
or angular resolution in azimuthal and/or elevation direction may be adapted over
a wide range and may be tailored to specific automotive scenarios the radar device
is used in.
[0012] Furthermore, the radar device of the present disclosure allows for activation of
at least two different antenna configurations, one configuration comprising the first
antenna with the first antenna element and operating in the first frequency band and
the other configuration comprising the second antenna with the second antenna element
and operating in the second frequency band. By changing the frequency band of the
radar signal and emitting the first signal portion or the second signal portion, the
radar device may adaptively switch between the first antenna configuration and the
second antenna configuration. The antenna configurations may, for example, be adaptively
activated depending on a traffic scenario detected via the radar device. One such
traffic scenario may be, for example, normal driving along a street and another traffic
scenario may be, for example, parking.
[0013] A first antenna configuration comprising the first antenna may provide a short-range
radar for monitoring traffic within a first distance in front of the car, for example
during parking, and a second antenna configuration comprising the second antenna may
provide a long-range radar for monitoring traffic within a second distance, for example
during normal driving. The second distance may be longer than the first distance,
for example by a factor of 2, 5, 10, or 100.
[0014] The radar circuit of the radar device comprises all parts of the radar device that
process the radar signal at the radar frequency used for illuminating the target objects
and thus constitutes a radar front end of the radar device. The radar circuit may
comprise a signal generator for generating the radar signal and a signal receiver
for receiving and measuring the radar signal. The radar circuit may be configured
as a transceiver comprising a transmitter, for example the signal generator, and the
receiver.
[0015] The common signal port may be a transmit port of the radar device or it may be a
receive port of the radar device. The radar circuit may handle the radar signal by
generating it at the signal generator and/or it may handle the radar signal by evaluating
or measuring it at the signal receiver. Likewise, the radar signal may be routed between
the radar circuit and the antenna device by sending it from the radar circuit to the
antenna device and/or by sending it from the antenna device to the radar circuit.
The antenna device may transduce the radar signal by converting it into electromagnetic
radiation that is emitted towards a target object irradiated by the radar device and/or
it may transduce the radar signal by receiving electromagnetic radiation scattered
back by the target object and by converting the received electromagnetic radiation
into the radar signal.
[0016] The signal generator may be configured to generate the radar signal based on a control
signal, for example based on a digital control signal, that the signal generator receives
from a signal processing device of the radar device. For generating the radar signal
from the control signal, the signal generator comprises a transmit chain with, for
example, a digital to analog converter (DAC) that is controlled by the control signal
and/or one or several signal control devices that are controlled by the control signal
and may be configured as, for example, variable attenuators or amplifiers, variable
phase shifters and/or the like.
[0017] The signal receiver may be configured to measure the received radar signal and to
generate a data signal, for example a digital data signal, representing the received
radar signal and to output the data signal to the signal processing device. For measuring
the radar signal and for generating the data signal from the radar signal, the signal
receiver comprises a receive chain having, for example, an analog to digital converter
(ADC) that samples the radar signal and/or one or more signal conditioning devices
such as low noise amplifiers, programmable filters, mixers, and/or the like that shape
the radar signal prior to sampling.
[0018] The radar circuit may be configured to handle several independent radar signals,
for example to generate several independent transmit radar signals from several independent
control signals and/or to measure several independent receive radar signals to generate
several independent data signals. The signal generator may then comprise several transmit
chains, one transmit chain for each transmit radar signal and/or the signal receiver
may then comprise several receive chains, one receive chain for each receive radar
signal. For example, the radar circuit may comprise three transmit chains and four
receive chains, each chain being connected to a separate signal port.
[0019] The individual transmit chains may be coupled to the antenna device via transmit
ports of the radar circuit and the individual receive chains may be coupled to the
antenna device via receive ports of the radar circuit. Each transmit port may be coupled
to one of the transmit chains of the radar circuit and may be schematically located
between the transmit chain and the antenna device and each receive port may be coupled
to one of the receive chains of the radar circuit and may be schematically located
between the receive chain and the antenna device. Each individual transmit port of
the radar circuit may therefore be schematically located between the last signal control
device of its associated transmit chain and the antenna device. Likewise, each receive
port of the radar circuit may be schematically located between the antenna device
and the first signal conditioning device of its associated receive chain.
[0020] According to the present disclosure, a radar signal is a signal that is processed
by a single transmit chain or by a single receive chain of the radar circuit and that
is routed via a single signal port of the radar circuit. One radar signal may comprise
several signal portions, such as the first and second signal portion. Each signal
portion may occupy a separate frequency band.
[0021] The radar circuit may be configured in an integrated circuit. The radar circuit may
only be configured in this single integrated circuit or it may be configured in one
or more additional integrated circuits. The integrated circuits may be phase coherently
coupled to each other. The integrated circuits may be configured, for example, as
MMICs. The individual ports of the radar circuit may be physical connection points
of one or several integrated circuits of the radar circuit, for example of a MMIC
comprising the radar circuit. They also may be logical or conceptual ports that are
located at signal lines between the transmit chains and the antenna device and/or
at signal lines between the receive chains and the antenna device, respectively, for
example in radar devices, in which individual components of the radar circuit and
the antenna device are integrated on a common carrier, like a common substrate. The
individual ports then designate locations at which the individual signal lines route
both the first signal portion and the second signal portion of the individual radar
signals before transmitting the first signal portion via the first antenna elements
only or after having received the first signal portion via the first antenna elements
only.
[0022] If the radar circuit comprises more than one transmit chain, each transmit chain
is configured to generate an individual transmit radar signal from an individual control
signal, the individual control signals and transmit radar signals being mutually independent
from each other. Likewise, if the radar circuit comprises more than one receive chain,
each receive chain is configured to measure an individual radar signal received from
the antenna device and to generate an individual data signal from the respective radar
signal, the receive radar signals and data signals being mutually independent from
each other.
[0023] The radar circuit may be configured to generate the individual signal portions of
the radar signals with individual and mutually independent signal parameters, such
as phases, amplitudes, chirps, phase shifts, code sequences, for example binary phase
shift codes, and/or the like. The individual and mutually independent signal parameters
may amount to orthogonality parameters that ensure separability among the individual
radar signals after reception, for example in multiple input multiple output (MIMO)
applications. The orthogonality parameters may, for example, employ phase shift keying,
for example binary phase shift keying or binary phase modulation, or the like.
[0024] The first and second signal portion may be generated having a frequency gap in between
them so that the output frequency of the radar signal is discontinuous when switching
from the first frequency band of the first signal portion to the second frequency
band of the second signal portion. The frequency gap may amount to at least a tenth,
at least a fifth, at least a third or at least one half of the frequency span of the
first and/or second frequency band. The frequency gap may amount to at most a tenth,
at most a fifth, at most a third or at most one half of the frequency span of the
first and/or second frequency band. Alternatively, the first and second signal portion
may be generated without such a frequency gap so that the output frequency of the
radar signal is continuous when switching from the first frequency band of the first
signal portion to the second frequency band of the second signal portion.
[0025] According to the present disclosure, an antenna of the antenna device is formed by
all antenna elements of the antenna device that collectively transduce between a radiation
field of the antenna in the far-field region and its associated antenna signal handled
by the radar circuit. Such an antenna may comprise a single antenna element or it
may be configured as an array antenna that comprises a set of antenna elements that
form individual radiating elements of the antenna and coherently transduce between
the radiation field and the antenna signal. If the antenna is a receive antenna, the
radiation field is an incoming radiation field that is captured by the antenna elements.
If the antenna is a transmit antenna, the radiation field is an outgoing radiation
field generated by the antenna elements.
[0026] The radiation field of an antenna has well-defined instantaneous field parameters
in the far-field of the antenna like phase center, frequency, amplitude and the like.
Likewise, each antenna has antenna parameters that define the characteristics of the
antenna and its radiation field. These antenna parameters may be a radiation pattern,
polarization, gain, directivity, location of phase center or antenna position, and
the like.
[0027] An antenna signal associated with a radiation field of an antenna comprises all signal
components that are routed between the radar circuit and the radar device that are
transduced by the antenna and thereby represent the radiation field of the antenna.
The signal processing device is configured to deduce from the antenna signal field
parameters of the radiation field.
[0028] The individual antennas of the antenna device, for example the first antenna and/or
the second antenna, may be configured as substrate integrated antennas such as microstrip
patch antennas or slotted substrate integrated waveguide (SIW) antennas. They also
may be configured as end-fire antennas, 3D antennas or metallized plastic antennas.
The individual antennas may comprise several conductively or proximity coupled antenna
elements, for example several individual slots and/or several individual patches.
The individual antenna elements may be coupled in series and/or in parallel. For example,
the individual antennas may be configured as series fed antenna arrays or as corporate
fed antenna arrays.
[0029] The first antenna is built of a first set of antenna elements that comprises at least
the first antenna element and the second antenna is built of a second set of antenna
elements that comprises at least the second antenna element. The first and second
set of antenna elements may be disjunct so that the first antenna and the second antenna
do not comprise any common antenna elements and are spatially completely separate.
The first and second sets of antenna elements may also contain one or more common
antenna elements, for example, the second antenna may comprise all antenna elements
of the first antenna. Finally, the first and second set may be equal so that the first
and second antenna are entirely built from common antenna elements. When comprising
common antenna elements, different antenna parameters of the first and second antenna,
for example different polarizations of the radiation patterns transduced via the common
antenna elements, may be realized by different feeding schemes of the common antenna
elements.
[0030] To each port of the radar circuit, at least one individual antenna element of the
antenna device is coupled. The individual antenna elements, for example the first
antenna element and the second antenna element, may be conductively coupled to their
respective common signal port. They also may be proximity coupled to their respective
common signal port. Proximity coupling may, for example, be realized via conductive
or inductive coupling. For example, both the first and second antenna element may
be conductively or proximity coupled to the common signal port. In other embodiments,
only the first or second antenna element may be conductively coupled to the common
signal port and the other antenna element may be proximity coupled to the common signal
port.
[0031] Frequency selectivity of the antenna device may, for example, be realized by employing
a frequency selective first antenna element and a frequency selective second antenna
element that are directly and simultaneously coupled to the common signal port. It
may also be realized by coupling the first and second antenna element to the common
signal port via a signal routing device such as a frequency selective multiplexer
or a switching device that selectively couples the first antenna element or the second
antenna element to the common signal port. Frequency selectivity may also be realized
by coupling the first antenna element via a first filter and/or the second antenna
element via a second filter to the common signal port, wherein the first filter passes
the first frequency band and blocks the second frequency band and wherein the second
filter passes at least the second frequency band.
[0032] The common signal port, to which the first antenna element and the second antenna
element are coupled, may be one of the transmit ports and the first antenna and the
second antenna may then be transmit antennas of the antenna device. Likewise, the
common signal port may be one of the receive ports and the first antenna and the second
antenna may then be receive antennas of the antenna device.
[0033] If the common signal port is configured as a transmit port, the radar signal is routed
between the radar circuit and the first and second antenna element by sending it from
the radar circuit to the first and second antenna element via the common signal port.
The first and second antenna elements then transduce the signal portions of the radar
signals by emitting electromagnetic radiation towards a target object irradiated by
the radar device. If the common signal port is configured as a receive port, the radar
signal is routed between the radar circuit and the first and second antenna element
by sending it from the first and second antenna elements to the radar circuit via
the common signal port. The first antenna element transduces the first signal portion
of the radar signal by receiving electromagnetic radiation in the first frequency
band and by sending a corresponding transmission line signal to the radar circuit
and the second antenna element transduces the second signal portion of the radar signal
by receiving electromagnetic radiation in the second frequency band and by sending
a corresponding transmission line signal to the radar circuit.
[0034] In general, the antenna device may comprise a multitude of antenna elements that
include the first and second antenna element and that are all coupled to the common
signal port of the radar circuit. The radar signal generated by the radar circuit
may then comprise a multitude of signal portions, for example one signal portion for
every antenna element connected to the common signal port. In particular, more than
two antenna elements may be coupled to the common signal port and the radar signal
may comprise more than two signal portions. The individual signal portions may each
occupy a separate frequency band. The antenna device may be configured to transduce
each signal portion via a separate associated antenna element of the antenna device.
Alternatively, the antenna device may be configured to transduce at least one signal
portion via at least two antenna elements of the antenna device. For example, the
antenna device may be configured to transduce a first signal portion via a first set
of at least two antenna elements and to transduce the second signal portion via a
second set of at least two antenna elements, wherein the first and second set of antenna
elements differ from each other. The first set of antenna elements and/or the second
set of antenna elements may each comprise, for example, two antenna elements.
[0035] In total, several or all ports of the radar circuit may be configured as common signal
ports and may be simultaneously coupled to an associated first antenna element of
a first antenna radiating at least in the first frequency band and to an associated
second antenna element of a second antenna only radiating in the second frequency
band and not in the first frequency band. Each individual radar signal that is generated
by the radar circuit and that is fed to a common signal port shared by two or more
antenna elements may have a first signal portion within the first frequency band and
a second signal portion within the second frequency band, both signal portions being
routed via the common signal port.
[0036] For example, all signal ports of the radar circuit may be configured as common signal
ports and the radar circuit may generate all radar signals with a first signal portion
occupying the first frequency band and a second signal portion occupying the second
frequency band. Alternatively, at least one, but not all signal ports of the radar
circuit may be configured as common signal ports and at least one radar signal may
have both a first and a second signal portion, but at least one of the radar signals
may have a first signal portion only and/or at least one of the radar signals may
have a second signal portion only. The first and second signal portions of the radar
signals share the bandwidth of their common signal port and transmit or receive chain
of the radar circuit that is connected to their common signal port.
[0037] The individual first signal portions may be generated with individual signal parameters,
for example individual separability parameters that distinguish them from each other,
and the individual second signal portions may be generated with individual signal
parameters, for example individual separability parameters that distinguish them from
each other. As all first signal portions and all second signal portions are distinguishable
by their frequency band, the same values of separability parameters may be used for
one of the first signal portions and one of the second signal portions. The individual
and mutually independent signal parameters may amount to different phases and/or amplitudes
and/or chirps and/or phase shifts and/or code sequences, for example binary phase
shift codes, and/or the like.
[0038] The individual pairs of first antennas of the radar device may each define individual
first propagation channels and the individual pairs of second antennas of the radar
device may each define individual second propagation channels. To this end, the signal
processing device may be configured to separate the first signal portion and the second
signal portion from each combined radar signal received via the individual common
signal ports, for example by filtering out the first frequency band to obtain the
first signal portion and by filtering out the second frequency band to obtain the
second signal portion. Filtering may be performed by analog filtering prior to sampling
and/or by digital filtering after sampling.
[0039] The first signal portion and the second signal portion that is received via a common
receive signal port may be independently processed by the signal processing device.
Using the separability parameters of the individual first signal portions, the propagation
parameters of the individual first propagation channels may then be determined by
comparing the transmitted first signal portion and the received first signal portion
associated with the respective first propagation channel. Likewise, by using the separability
parameters of the individual second signal portions, the propagation parameters of
the individual second propagation channels may be determined by comparing the transmitted
second signal portion and the received second signal portion associated with the respective
second propagation channel.
[0040] In general, detecting target reflections via a specific propagation channel from
a specific signal portion comprises using the respective signal portion as receive
signal of the associated propagation channel or using the respective signal portion
as transmit signal of the associated propagation channel.
[0041] Depending on the placement and radiation characteristics of the individual antennas,
the propagation channels that are established over the common signal port by routing
the first or second signal portion may have different propagation channel properties
like polarization and/or antenna location, such as location of transmit antenna and/or
location of receive antenna, and/or path length towards a target object and/or field
of view, for example in the elevation direction and/or in the azimuthal direction,
and/or radiation direction, and/or the like. The signal processing device may then
process the data from the individual propagation channels to construct, for example,
individual virtual antenna arrays, for example MIMO arrays. For example, all first
signal portions transduced via the first antennas may be processed to form a first
array and all second signal portions transduced via the second antennas may be processed
to form an independent second array. Consequently, the performance of the radar device
may be increased and it is, for example, possible to realize a radar device that has
comparable angle resolution in both the azimuthal and the elevation direction with
a single radar circuit.
[0042] The individual radar signals are oscillating electromagnetic signals, such as microwave
signals. The radar frequencies of the radar signals may be at least 1 GHz, at least
30 GHz, at least 60 GHz or at least 70 GHz. They may be at most 200 GHz, at most 100
GHz, at most 85 GHz, at most 60 GHz or at most 40 GHz. The radar frequencies of the
radar signals may lie, for example between 31 GHz and 37 GHz or between 75 GHz and
85 GHz, or between 76 GHz and 81 GHz. The first frequency band may lie between 75
GHz and 78 GHz, for example between 75.5 GHz and 77.5 GHz, and the second frequency
band may lie between 79 GHz and 82 GHz, for example between 79.5 GHz and 81.5 GHz.
[0043] The radar device may be configured as a continuous wave (CW) radar device and the
radar signals may exhibit a signal modulation that is used for determining the target
distance. Such a signal modulation may be a frequency modulation, a phase modulation,
or the like. The radar device may therefore be configured as a frequency modulated
continuous wave (FMCW) or as a phase modulated continuous wave (PMCW) radar device.
[0044] With a FMCW radar device, the first signal portion may comprise a first frequency
sweep, for example a linear frequency sweep, over the first frequency band and the
second signal portion may comprise a second frequency sweep, for example a linear
frequency sweep, over the second frequency band. The radar device may be configured
as a distance sensing device, for example by employing FMCW radar signals, and/or
as an angle resolving device, for example by arranging the individual antennas of
the device as a MIMO array in azimuthal and/or elevation direction.
[0045] The first and/or second frequency sweep may have a single sweep direction, such as
a rising direction and/or a falling direction. They also may have a changing sweep
direction, like a triangular sweep direction. The first and second signal portions
may comprise frequency sweeps having the same slopes or they may consist of linear
frequency sweeps having the same slopes.
[0046] The FMCW radar device may employ simultaneous transmit and receive pulse Doppler
(STAR PD) signals. With these STAR PD signals, the first and second signal portion
may each comprise a multitude of pulsed frequency sweeps over the first and second
frequency band, respectively. The individual frequency sweeps may each exhibit constant
slope, for example constant falling linear slope. The signal processing device of
the radar device may then be configured to transform each individual sweep into a
set of range bins by performing a first Fourier transform, for example a fast Fourier
transform, on the individual frequency sweeps. The signal processing device may further
be configured to transform the individual range bins into Doppler bins via a second
Fourier transform, for example a fast Fourier transform, whereby the second Fourier
transform uses, for a given range bin, all signals for that specific range bin from
all pulsed sweeps.
[0047] The signal processing device may comprise a ranging module that is configured to
jointly process the first and second signal portion to determine a distance to a target
object irradiated by the antenna device. This increases the range resolution of the
radar device, as the range solution is typically inversely proportional to the bandwidth
of the radar signal used for determining the target distance.
[0048] The first signal portion may exhibit a first signal modulation and the second signal
portion may exhibit a second signal modulation. By jointly processing the first and
second signal portion, the signal processing device may evaluate both the first and
second signal modulation to determine the distance to the target object. In general,
each set of antenna signals transceived by the radar circuit may exhibit an individual
signal modulation. The signal processing device may be configured to jointly process
a subset of the antenna signals or all antenna signals to determine the distance to
the target object. Thereby, the signal processing device may evaluate a subset of
the individual signal modulations or all individual signal modulations to determine
the distance to the target object.
[0049] The propagation delay of the antenna signals or signal portions between the radar
device and the target object may be determined from a modulation difference, such
as a frequency or phase difference, between the antenna signals or signal portions
reflected by the target object and a reference signal provided within the radar device.
The reference signal may be, for example, the antenna signals or signal portions that
are being transmitted during reception of the reflected antenna signals or signal
portions. To obtain the modulation difference, the signal processing device may be
configured to mix the reflected antenna signals or signal portions with the corresponding
reference signals.
[0050] If the signal modulation constitutes a frequency modulation, the first signal portion
may exhibit a first frequency modulation that spans the first frequency band and the
second signal portion may exhibit a second frequency modulation that spans the second
frequency band, so that the bandwidth of the first frequency modulation equals the
first frequency band and the bandwidth of the second frequency modulation equals the
second frequency band. The bandwidth of a combined antenna signal that is obtained
by jointly processing the first and second signal portion with the ranging device
then spans both the first frequency band and the second frequency band. The second
frequency modulation of the second signal portion may be a frequency shifted version
of the first frequency modulation of the first signal portion so that the instantaneous
frequency of the second signal portion is given by adding the instantaneous frequency
of the first signal portion and a constant frequency shift.
[0051] The individual frequency modulations may be cyclically repeated. The radar circuit
may be configured to first generate the first signal portion and to then generate
the second signal portion and the antenna device may be configured to first transduce
the first signal portion and to then transduce the second signal portion. When cyclically
repeating the first and second frequency modulation, the first signal portion and
the second signal portion may be alternately generated by the radar circuit and subsequently
transduced by the antenna device.
[0052] The signal processing device may be configured to jointly process the first signal
portion and the second signal portion by generating a combined antenna signal that
spans both the first and second frequency band and comprises the first and second
signal portion. The combined antenna signal may be generated by concatenating the
first and second signal portion. In general, the signal processing device may be configured
to jointly process a multitude of antenna signals or signal portions, for example
more than two antenna signals or signal portions, each antenna signal or signal portion
spanning a different frequency band.
[0053] The radar circuit may be configured to transceive a third signal portion of the radar
signal occupying a third frequency band that is different from the first frequency
band and the second frequency band, and the ranging module of the radar device may
be configured to jointly process the first, second and third signal portion to determine
the distance to the target object irradiated by the first, second and third signal
portion. The third signal portion may be transduced via at least one of the first
and second antenna. It also may be transduced via both the first and second antenna.
[0054] The third frequency band may lie between the first and second frequency band. The
third frequency band may, for example, cover the entire frequency range between the
first and second frequency band. This maximizes the bandwidth of the combined antenna
signal used to determine the distance to the target object and therefore the resolution
with which the distance to the target object may be resolved. Alternatively, third
frequency band may also be separated by a first frequency gap from the first frequency
band and/or by a second frequency gap from the second frequency band.
[0055] The second antenna element may be configured to only transduce the second signal
portion and not the first signal portion by suppressing transduction of the first
signal portion compared to the second signal portion by at least 10 dB, at least 20
dB, at least 30 dB, at least 40 dB, or at least 50 dB.
[0056] The radar device may be mounted to a vehicle. The radar device may be configured
as an interior radar device that captures target reflection from a passenger compartment
of the vehicle or as an exterior radar device that captures target reflections from
the outer environment of the vehicle, for example as a front radar or a side radar
or a rear radar. The radar device may be part of a vehicle control system and may
be connected to a control device of the vehicle control system. The control device
may be configured to perform advanced driver's assist functions, such as adaptive
cruise control, emergency brake assist, lane change assist or autonomous driving,
based on the data signals received from the radar device. The control device and/or
the signal processing device of the radar device may be configured as programmable
logic devices, such as programmable logic controllers, FPGAs, ASICs or microprocessors.
[0057] According to an embodiment, the antenna device is configured to transduce the second
signal portion via both the first antenna element and the second antenna element.
Consequently, the second antenna comprises both the first antenna element and the
second antenna element and the first antenna comprises the first antenna element but
not the second antenna element. Transducing the second signal portion via an array
antenna that comprises at least the first antenna element and the second antenna element
allows to transduce the second signal portion within a different, for example narrower,
solid angle than the first signal portion. Therefore, the field of view of the radar
device may be different, for example narrower, in the second frequency band than in
the first frequency band.
[0058] According to an embodiment, the antenna device is configured to block transduction
of the second signal portion via the first antenna element. The first and second antenna
elements thus form dedicated antenna elements only transducing the first and second
signal portion, respectively.
[0059] The first and second signal portion may be radiated from or received at different
and well defined physical locations on the antenna device, for example in angle resolving
antenna arrays such as single input multiple output (SIMO) or MIMO configurations.
If the radar device has several common signal ports, each of which is coupled to a
first antenna element that is part of a first antenna and a second antenna element
that is part of a second antenna, each first antenna element may be configured to
only transduce the corresponding first signal portion and each second antenna element
may be configured to only transduce the corresponding second signal portion.
[0060] The first antenna element may be configured to block transduction of the second signal
portion by suppressing transduction of the second signal portion compared to the first
signal portion by at least 10 dB, at least 20 dB, at least 30 dB, at least 40 dB,
or at least 50 dB.
[0061] According to an embodiment, the antenna device is configured to transduce the first
signal portion with a first polarization and to transduce the second signal portion
with a second polarization, wherein the second polarization is different from, for
example orthogonal to, the first polarization. For example, the first polarization
and the second polarization may be linear polarizations, and one of the first and
second antennas may transduce with horizontal linear polarization and the other one
of the first and second antennas may transduce with vertical linear polarization.
The first polarization and the second polarization may also be circular polarizations,
and one of the first and second antennas may transduce with left-handed circular polarization
and the other one of the first and second antennas may transduce with right-handed
circular polarization.
[0062] Transducing the first signal portion and the second signal portion with different
polarizations improves the isolation between first propagation channels comprising
the first antenna and second propagation channels comprising the second antenna, for
example in multiple output configurations. If the antenna device comprises a multitude
of first antennas and a multitude of second antennas, all antenna elements of the
first antennas may transduce with the first polarization and all antenna elements
of the second antennas may transduce with the second polarization. Therefore, all
first propagation channels comprising the first antennas may operate at the first
polarization and all second propagation channels comprising the second antennas may
operate at the second polarization.
[0063] When evaluating the data signals generated from the received radar signals in the
signal processing device, the different polarizations of the first and second antennas
may be used, for example, for classification of the detected target objects. In this
way, polarimetric properties of the target objects may be detected and used during
object classification by the signal processing device. This object classification
may be performed, for example, by machine-learned algorithms that have been trained
on data signals representing the polarimetric properties of different training target
objects.
[0064] If the antenna device transduces the first signal portion with the first polarization
and the second signal portion with the second polarization, the first propagation
channel may be defined by radiation having the first polarization and the second propagation
channel may be defined by radiation having the second polarization. Apart from the
polarization of the transmitted radiation, the first propagation channel and the second
propagation channel may comprise the same propagation path from the radar device to
a target object and back to the radar device. The first propagation channel and the
second propagation channel may also comprise different propagation paths between the
radar device and the target object.
[0065] If the antenna device is configured to transduce the third antenna signal, it may
be configured to transduce the third antenna signal with a third polarization that
is different from the first and second polarization. The third polarization may be,
for example, a linear superposition of the first and second polarization. For example,
the first antenna may transduce with the first polarization while the second antenna
transduces with the second polarization and the third antenna signal may be transduced
via both the first and second antenna. This results in the third antenna signal having
a polarization that amounts to a superposition of the first and second polarization.
If the first and second polarizations are orthogonal linear polarizations, the third
polarization may be linear polarization at an intermediate angle, for example +/-
45°, or elliptical polarization.
[0066] According to an embodiment, the first antenna element and the second antenna element
are serially coupled to the signal port of the radar circuit via a common signal line.
The second antenna element is resonant in the second frequency band and not in the
first frequency band and the first antenna element is resonant at least in the first
frequency band. For example, the first antenna element may be resonant only in the
first frequency band and not in the second frequency band or it may be resonant in
both the first frequency band and the second frequency band.
[0067] The serially coupled first and second antenna elements then constitute a natural
frequency selective power divider and the antenna device may have a compact and simple
construction. One of the first and second antenna elements is coupled to the common
signal line in between the other antenna element and the common signal port. This
antenna element may be part of a leaky travelling waveguide antenna, for example of
a leaky travelling waveguide array antenna, and the other antenna element may be part
of a series fed antenna, for example as a series fed array antenna. Additionally or
alternatively, a filter may be placed between the individual antenna elements, wherein
the filter is configured to block the signal portion that is radiated via the antenna
element that is coupled to the common signal line in between the common signal port
and the other antenna element.
[0068] According to an embodiment, the first antenna element and the second antenna element
are coupled to the signal port of the radar circuit in parallel via a signal routing
device of the antenna device and the signal routing device is configured to split
the radar signal into the first signal portion and the second signal portion and to
selectively route the first signal portion only between the common signal port and
the first antenna element and not between the common signal port and the second antenna
element and to route the second signal portion at least between the common signal
port and the second antenna element. For example, the signal routing device may be
configured to route the second signal portion between the common signal port and both
the first and second antenna element or between the common signal port and the second
antenna element only and not between the common signal port and the first antenna
element. Such a signal routing device allows selectively transducing the first signal
portion only via the first antenna element irrespective of the bandwidth of the first
or second antenna.
[0069] According to an embodiment, the signal routing device is configured as a switching
device that is configured to alternately conductively couple a first port that is
coupled, for example conductively or proximity coupled, to the first antenna element
or a second port that is coupled, for example conductively or proximity coupled, to
the second antenna element to the common signal port of the radar circuit. Such a
switching device may have low attenuation of the routed signals.
[0070] The switching device may be configured as a microwave switch having active and/or
passive components. It may be controlled via a control line carrying a switching signal
that determines the switching state of the switching device. The switching device
may be integrated in the radar circuit, for example in a MMIC of the radar circuit,
or it may comprise discrete components placed between the radar circuit and the antenna
device.
[0071] According to an embodiment, the signal routing device is configured as a frequency
selective device, for example as a frequency selective multiplexer, having a first
port that is coupled, for example conductively or proximity coupled, to the first
antenna element, a second port that is coupled, for example conductively or proximity
coupled, to the second antenna element and a frequency selective section that couples,
for example conductively or proximity couples, the first and the second port to the
common signal port of the radar circuit.
[0072] The frequency selective section may comprise a first filter coupling the common signal
port with the first port of the signal routing device and a second filter coupling
the common signal port with the second part of the signal routing device. The second
filter may be configured to only pass the second signal and not the first signal and
the first filter may be configured to pass at least the first signal. The first filter
may be configured to pass both the first and second signal or it may be configured
to pass only the first signal and not the second signal. The individual filters may
be configured as LANGE filters and/or as KAMM filters. The filters may be, for example,
implemented as substrate integrated waveguide filters.
[0073] According to an embodiment, the radar circuit comprises an integrated circuit and
the common signal port is configured as an external connection point of the integrated
circuit. Coupling the connection point to the first and second antenna element then
effectively doubles the propagation channels that are addressable via the connection
point forming the common signal port. The integrated circuit may be configured as
a MMIC.
[0074] According to an embodiment, a phase center of the first antenna and a phase center
of the second antenna are positioned at the same location on the antenna device. For
example, the first antenna element and the second antenna element may be configured
to transduce the first signal portion and the second signal portion with phase centers
being located at the same physical location on the antenna device. To this end, the
first antenna element and the second antenna element may be formed by a dual frequency
antenna element that is a resonant both in the first frequency band and in the second
frequency band. Such a dual frequency antenna element may be fed by a common signal
line carrying both the first and second signal portion.
[0075] In general, the first antenna comprising the first antenna element and the second
antenna comprising the second antenna element may be configured to transduce a first
antenna signal containing the first signal portion and a second antenna signal containing
the second signal portion from the same physical location on the antenna device. For
example, the first antenna may be configured to transduce a first radiation field
and the second antenna may be configured to transduce a second radiation field, wherein
the first and second radiation field have the same phase center. For example, the
first antenna and the second antenna may comprise the same set of dual frequency antenna
elements, each dual frequency antenna element being fed with a component of the first
antenna signal and a component of the of the second antenna signal. Alternatively,
the first antenna and the second antenna may comprise different sets of antenna elements
that are arranged to generate the coinciding phase centers.
[0076] According to an embodiment, a phase center of the first antenna and a phase center
of the second antenna are positioned at different locations on the antenna device.
To this end, the individual antenna elements of the first and second antenna may be
configured as separate antenna elements that are located at different physical locations
of the antenna device.
[0077] In general, the first antenna comprising the first antenna element and the second
antenna comprising the second antenna element may be configured to transduce the first
antenna signal containing the first signal portion and the second antenna signal containing
the second signal portion via different physical locations on the antenna device.
[0078] In general, the individual antenna elements coupled to a common signal port of the
radar circuit may also contain a set of antenna elements that are configured to radiate
individual signal portions from the same physical location and another set of antenna
elements that are configured to radiate individual signal portions from separate physical
locations on the antenna device. For example, two antenna elements coupled to a common
signal port may be configured to radiate their respective signal portions from the
same physical location and two further antenna elements coupled to the same signal
port may be configured to radiate the respective signal portions from separate physical
locations.
[0079] According to an embodiment, the first antenna comprising the first antenna element
is part of a first set of antennas that transduce in the first frequency band and
are displaced with respect to each other along a first direction and the second antenna
comprising the second antenna element is part of a second set of antennas that transduce
in the second frequency band and are displaced with respect to each other along a
second direction. The signal processing device is configured to process individual
first radar signals transduced via the first set of antennas to form a first virtual
array of antennas that resolves targets along the first direction and to process individual
second radar signals transduced via the second set of antennas to form a second virtual
array of antennas that resolves targets along the second direction.
[0080] The second direction may be different from, for example orthogonal to, the first
direction. The first direction may be the azimuthal direction and the second direction
may be the elevation direction. Alternatively, the second direction may equal the
first direction. Both the first and second direction may then be the azimuthal or
the elevation direction.
[0081] The individual antennas of the first set of antennas are displaced from each other
along the first direction and the individual antennas of the second set of antennas
are displaced from each other along the second direction. The first and second antennas
being displaced with respect to each other may result from the phase centers of the
respective antennas being displaced with respect to each other. Unless noted otherwise,
a position of an antenna should be understood as being equal to its phase center.
[0082] The first virtual array of antennas is constructed from reflections of the first
signal portions of the radar signals from an target object, wherein the first signal
portions propagate along individual first propagation paths between the radar device
and the target object, and the second virtual array of antennas is constructed from
reflections of the second signal portions of the radar signals from the target object,
wherein the second signal portions propagate along individual second propagation paths
between the radar device and the target object. The first propagation channel that
is used by the signal processing device for target detection then comprises electromagnetic
radiation that travels along one of the first propagation paths and the second propagation
channel comprises electric radiation that travels along one of the second propagation
paths. Besides the different propagation paths, the first and second propagation channel
may additionally differ by the polarization of the first and second radar signals.
[0083] The first set of antennas are be arranged to resolve individual targets irradiated
by the radar device along the first direction and the second set of antennas are be
arranged to resolve the individual targets along the second direction. Both the first
and the second array may have high angle resolution. The first and the second array
may have, for example, the same angle resolution. The first and the second array may
also have mutually different angle resolutions. The first array may comprise a different
number of antennas than the second array and/or the antennas of the first array may
be arranged with different spacing than the antennas of the second array. For example,
the first array may have a higher number of antennas than the second array and/or
the antennas of the first array may be arranged with a smaller spacing than the antennas
of the second array and the angle resolution along the first direction may be larger
than the angle resolution along the second direction.
[0084] Additionally or alternatively, the first and second array may have mutually different
range resolutions. To this end, the first frequency band may, for example, span a
different bandwidth than the second frequency band. For example, the first frequency
band may span a larger bandwidth than the second frequency band and the range resolution
of the first array may be larger than the angle resolution of the second array.
[0085] The first set of antennas may comprise all first antennas transducing in the first
frequency band and being coupled to individual common signal ports of the radar device
and the second set of antennas may comprise all second antennas transducing in the
second frequency band and being coupled to the individual common signal ports of the
radar device. The signal processing device may, for example, be configured to generate
a first virtual antenna array, such as a first MIMO array, from the propagation channels
established by the first radar signals transduced by the first antennas and to generate
a second virtual antenna array, such as a second MIMO array, from the propagation
channels of the second radar signals transduced by the second antennas.
[0086] The virtual antennas of the first virtual antenna array may have even first distances
in between them. For example, the first distances may amount to half the wavelength
of a selected frequency within the first frequency band, for example to half the wavelength
of the center frequency of the first frequency band. Analogously, the virtual antennas
of the second virtual antenna array may have even second distances in between them.
For example, the second distances may amount to half the wavelength of a selected
frequency within the second frequency band, for example to half the wavelength of
the center frequency of the second frequency band. Alternatively, the first distance
may equal the second distance. For example, the first and second distance may amount
to the wavelength at a selected frequency that is in between the first and second
frequency band, for example, at the center between a minimum frequency of the first
frequency band and a maximum frequency of the second frequency band or at the center
between a maximum frequency of the first frequency band and a minimum frequency of
the second frequency band.
[0087] According to an embodiment, the first antenna comprising the first antenna element
has a first field of view, the first field of view having a first extent along a lateral
direction and the second antenna comprising the second antenna element has a second
field of view, the second field of view having a second extent along the lateral direction,
wherein the first extent is larger than the second extent. The lateral direction may,
for example, be the azimuthal direction or the elevation direction.
[0088] This allows the radar device to perform different radar functions that necessitate
different fields of view. For example, antenna signals or data representing the antenna
signals from the second antenna may be used by the signal processing device for long-range
radar (LRR) functions and/or adaptive cruise control and/or emergency brake assist,
and antenna signals or data representing the antenna signals from the first antenna
may be used for mid-range radar (MRR) or short-range radar (SRR) functions and/or
lane change assist, and/or cross traffic detection, and/or parking assist.
[0089] The first propagation channel used by the signal processing device for target detection
then comprises first propagation paths that are located within the first field of
view, for example within an area of the first field of view that is situated outside
the second field of view, and the second propagation channel used for target detection
comprises second propagation paths that are located within the second field of view,
for example within an area of the second field of view that is situated outside the
first field of view. Besides the different propagation paths, the first and second
propagation channel may additionally differ by the polarization of the first radar
signal and the second radar signal.
[0090] To realize a small field of view, the second antenna may comprise a multitude of
second antenna elements that are placed next to each other along the lateral direction
and form a phased array that narrows the beam solid angle of the second antenna in
the lateral direction. The first antenna may comprise a multitude of first antenna
elements that form a larger beam solid angle than the antenna elements of the second
antenna, for example, due to the first antenna having a smaller number of antenna
elements than the second antenna arrangement.
[0091] According to an embodiment, the first antenna does not comprise the second antenna
element, and the second antenna comprises the second antenna element and the first
antenna element. The second antenna may then comprise a multitude of antenna elements
that includes both all first antenna elements of the first antenna and all second
antenna elements of the second antenna. The second antenna elements may be positioned
symmetrically on both sides of the first antenna elements. The antenna device may
then be configured to transduce the first signal portion in the first frequency band
only via the first antenna elements of the first antenna and to transduce the second
signal portion in the second frequency band via both the first antenna elements of
the first antenna and the second antenna elements of the second antenna.
[0092] In another aspect, the present disclosure is directed at a method for operating a
radar device for automotive applications, the radar device comprising a radar circuit
and an antenna device having a first antenna element that is part of a first antenna
and a second antenna element that is part of a second antenna, the first and second
antenna element being both coupled to a common signal port of the radar circuit. The
method comprises:
- generating a radar signal having a first signal portion and a second signal portion,
wherein the first signal portion occupies a first frequency band and the second signal
portion occupies a second frequency band that is separate from the first frequency
band;
- routing both the first signal portion and the second signal portion via the common
signal port between the radar circuit and the antenna device; and
- transducing the first signal portion via the first antenna element and not via the
second antenna element and transducing the second signal portion at least via the
second antenna element,
- detecting from the first signal portion target reflections via a first propagation
channel and detecting from the second signal portion target reflections via a second
propagation channel.
[0093] The method may be performed, for example, by the radar device of the present disclosure.
Insofar, all embodiments and effects that are disclosed in connection with the radar
device also apply to the method of the present disclosure and vice versa.
[0094] The common signal port may be a transmit port or a receive port of the radar circuit.
If the common signal port is a transmit port, the step of routing the first and second
signal portion via the common signal port is performed prior to the step of transducing
the first and second signal portion by sending an electromagnetic radiation via the
antenna device. If the common signal port is a receive port, the step of routing the
first and second signal portion via the common signal port is performed after the
step of transducing the first and second signal portion by picking up electromagnetic
radiation via the antenna device.
DRAWINGS
[0095] Exemplary embodiments and functions of the present disclosure are described herein
in conjunction with the following drawings, showing schematically:
- Fig. 1
- a first embodiment of a radar device according to the present disclosure;
- Fig. 2
- a transmission of first and second antennas of radar devices according to the present
disclosure;
- Fig. 3
- a time dependence of frequencies of radar signals generated by the radar devices according
to the present disclosure;
- Fig. 4
- a second embodiment of a radar device according to the present disclosure;
- Fig. 5
- a signal routing device of the radar device according to the second embodiment;
- Fig. 6
- an alternative embodiment of the signal routing device;
- Fig. 7
- another alternative embodiment of the signal routing device;
- Fig. 8
- a first antenna and a second antenna inductively coupled to a common signal port;
- Fig. 9
- a first antenna, a second antenna and a further antenna serially coupled via filter
elements;
- Fig. 10
- a first antenna and a second antenna configured as waveguide antennas and serially
coupled via a filter element;
- Fig. 11
- a third embodiment of the radar device of the present disclosure;
- Fig. 12
- a placement of antennas of the third embodiment of the radar device;
- Fig. 13
- a placement of antennas of the second embodiment of the radar device;
- Fig. 14
- a fourth embodiment of the radar device of the present disclosure;
- Fig. 15
- differing fields of view of first and second antennas of an antenna device according
to the present disclosure;
- Fig. 16
- a placement of the first and second antennas generating differing fields of view;
- Fig. 17
- an alternative placement of the first and second antennas generating differing fields
of view;
- Fig. 18
- a signal processing device for the radar devices according to the present disclosure;
- Fig. 19
- an alternative transmission of first and second antennas for radar devices according
to the present disclosure;
- Fig. 20
- bursts of a radar signal that may be used with antennas having the transmissions shown
in Fig. 19;
- Fig. 21
- a further embodiment of a radar device according to the present disclosure;
- Fig. 22
- a further embodiment of a radar device according to the present disclosure;
- Fig. 23
- an alternative embodiment of the radar device of Fig. 22;
- Fig. 24
- an antenna device for the radar devices of the present disclosure;
- Fig. 25
- an alternative embodiment of the antenna device of Fig. 24;
- Fig. 26
- an alternative embodiment of an antenna device for the radar devices of the present
disclosure;
- Fig. 27
- an alternative embodiment of an antenna device for the radar devices of the present
disclosure;
- Fig. 28
- an embodiment of a first and second antenna coupled to a common signal port for an
antenna device of the present disclosure;
- Fig. 29
- an alternative embodiment of the first and second antenna coupled to the common signal
port shown in Fig. 28;
- Fig. 30
- a method according to the present disclosure; and
- Fig. 31
- a vehicle equipped with a radar device according to the present disclosure.
DETAILED DESCRIPTION
[0096] Fig. 1 depicts a radar device 1 having a radar circuit 100, an antenna device 200 and a
signal processing device 120. The radar circuit 100 comprises a signal generator 105
having a first transmit chain 125 and a second transmit chain 126. The first transmit
chain 125 is coupled to a first common transmit signal port 130 and the second transmit
chain 126 is coupled to a second common transmit signal port 131.
[0097] Each common transmit signal port 130, 131 is coupled to a first antenna 211 and a
second antenna 221 of the antenna device 200, the first antennas 211 and the second
antennas 221 each being placed at different locations on the antenna device 200. The
first transmit chain 125 is connected to the signal processing device 120 to receive
a first control signal 121 and the second transmit chain 126 is connected to the signal
processing device 120 to receive a second control signal 122.
[0098] Based on the first control signal 121, the first transmit chain 125 generates a first
transmit radar signal 10 comprising a first signal portion 11 occupying a first frequency
band and a second signal portion 12 occupying a second frequency band. The first transmit
radar signal 10 is routed via the first common transmit signal port 130 to the antenna
device 200 and the antenna device 200 is configured to selectively transduce the first
signal portion 11 of the first transmit radar signal 10 via the first antenna 211
coupled to the first common transmit signal port 130 and to selectively transduce
the second signal portion 12 of the first transmit radar signal 10 via the second
antenna 221 coupled to the first common transmit signal port 130.
[0099] Based on the second control signal 122, the second transmit chain 126 generates a
second transmit radar signal 15 comprising a first signal portion 16 occupying the
first frequency band and a second signal portion 17 occupying the second frequency
band. The second transmit radar signal 15 is routed via the second common transmit
signal port 131 to the antenna device 200 and the antenna device 200 is configured
to selectively transduce the first signal portion 16 of the second transmit radar
signal 15 via the first antenna 211 coupled to the second common transmit signal port
131 and to selectively transduce the second signal portion 17 of the second transmit
radar signal 15 via the second antenna 221 coupled to the second common transmit signal
port 131.
[0100] The individual first signal portions 11, 16 of the first and second transmit radar
signal 10, 15 are radiated by the individual first antennas 211 towards a target object
3 and the individual second signal portions 12, 17 of the first and second transmit
radar signal 10, 15 are radiated by the individual second antennas 221 towards the
target object 3. The target object 3 reflects the signal portions 11, 12, 16, 17 of
the first and second transmit radar signal 10, 15 at least partly back to the antenna
device 200.
[0101] At the antenna device 200, the first signal portions 11, 16, which occupy the first
frequency band, are transduced by two separated first antennas 211 and the second
signal portions 12, 17, which occupy the second frequency band, are transduced by
two separated second antennas 221. The first antennas 211 are resonant in the first
frequency band of the first signal portions 11, 16 and they are off-resonant in the
second frequency band of the second signal portions 12, 17. Analogously, the second
antennas 221 are resonant in the second frequency band of the second signal portions
12, 17 and they are off-resonant in the first frequency band of the first signal portions
11, 16.
[0102] One of the first antennas 211 and one of the second antennas 221 are coupled via
a first common receive signal port 135 to a first receive chain 127 of a signal receiver
110 of the radar circuit 100. Likewise, the other one of the first antennas 211 and
the other one of the second antennas 221 are coupled via a second common receive signal
port 136 to a second receive chain 128 of the signal receiver 110.
[0103] The antenna device 200 routes a first signal portion 21 of a first receive radar
signal 20 from the first antenna 211 that is coupled to the first common receive signal
port 135 and a second signal portion 22 of the first receive radar signal 20 from
the second antenna 221 that is coupled to the first common receive signal port 135
via the first common receive signal port 135 to the first receive chain 127. The antenna
device 200 further routes a first signal portion 26 of a second receive radar signal
25 from the first antenna 211 that is coupled to the second common receive signal
port 136 and a second signal portion 27 of the second receive radar signal 25 from
the second antenna 221 that is coupled to the second receive signal port 136 via the
second common receive signal port 136 to the second receive chain 128.
[0104] The first signal portion 21 of the first receive radar signal 20 comprises the fractions
of the first signal portions 11, 16 of the first and second transmit radar signals
10, 15 that are received by the first antenna 211 coupled to the first common receive
signal port 135. The second signal portion 22 of the first receive radar signal 20
comprises the fractions of the second signal portions 12, 17 of the first and second
transmit radar signals 10, 15 that are received by the second antenna 221 coupled
to the first common receive signal port 135.
[0105] Likewise, the first signal portion 26 of the second receive radar signal 25 comprises
the fractions of the first signal portions 11, 16 of the first and second transmit
radar signals 10, 15 that are received by the first antenna 211 coupled to the second
common receive signal port 136. The second signal portion 27 of the second receive
radar signal 25 comprises the fractions of the second signal portions 12, 17 of the
first and second transmit radar signals 10, 15 that are received by the second antenna
221 coupled to the second common receive signal port 136.
[0106] The first receive chain 127 generates a first radar data signal 123 that represents
the first radar signal 20 received from the first common receive signal port 135 and
the second receive chain 128 generates a second radar data signal 124 that represents
the second radar signal 25 received from the second common receive signal port 136.
The signal receiver 110 is connected to the signal processing device 120 and the first
and second radar data signal 123, 124 are transferred from the signal receiver 110
to the signal processing device 120.
[0107] The first transmit chain 125 and the second transmit chain 126 generate the respective
first portions 11, 16 of the first transmit radar signal 10 and the second transmit
radar signal 15 having different values of a first separability parameter and they
generate the respective second portions 12, 17 of the first transmit radar signal
10 and the second transmit radar signal 15 having different values of a second separability
parameter. Using the first separability parameter, the signal processing device 120
is able to separate the parts of the first signal portions 21, 26 of the first and
second receive radar signal 20, 25 that originate from the first portion 11 of the
first transmit radar signal 10 from the parts of the first signal portions 21, 26
of the first and second receive radar signal 20, 25 that originate from the first
portion 16 of the second transmit radar signal 15. Likewise, the signal processing
device 120 uses the second separability parameter to separate the parts of the second
signal portions 22, 27 of the first and second receive radar signal 20, 25 that originate
from the second portion 12 of the first transmit radar signal 10 from the parts of
the second signal portions 22, 27 that originate from the second portion 17 of the
second transmit radar signal 15.
[0108] Additionally, the signal processing device 120 separates the first signal portion
21 and the second signal portion 22 of the first receive radar signal 20 using the
separate frequency bands of the first and second signal portions 21, 22 received via
the first common receive signal port 135 and the signal processing device 120 separates
the first signal portion 26 and the second signal portion 27 of the second receive
radar signal 25 using the separate frequency bands of the first and second signal
portions 25, 26 received via the second common receive signal port 136.
[0109] The first antennas 211 transduce electromagnetic radiation with a first polarization
and the second antennas 221 transduce electromagnetic radiation with a second polarization
that is orthogonal to the first polarization. For example, the first antennas 211
may transduce electromagnetic radiation with horizontal linear polarization and the
second antennas 221 may transduce electromagnetic radiation with vertical linear polarization,
or vice versa.
[0110] The radar device 1 establishes a total of eight different propagation channels from
the antenna device 200 to the target object 3 and back to the antenna device 200 and
the signal processing device 120 is configured to separately detect the target reflections
propagating via the individual propagation channels, for example for establishing
a virtual array in a MIMO configuration. Among the eight different propagation channels,
a first set of four propagation channels is operating in the first frequency band
and a second set of four propagation channels is operating in the second frequency
band.
[0111] The radar device 1 establishes a first propagation channel 70 from the first antenna
211 coupled to the first common transmit signal port 130 to the first antenna 211
coupled to the first common receive signal port 135, a second propagation channel
71 from the second antenna 221 coupled to the first common transmit signal port 130
to the second antenna 221 coupled to the first common receive signal port 135, a third
propagation channel 72 from the first antenna 211 coupled to the first common transmit
signal port 130 to the first antenna 211 coupled to the second common receive signal
port 136, and a fourth propagation 73 channel from the second antenna 221 coupled
to the first common transmit signal port 130 to the second antenna 221 coupled to
the second common receive signal port 136.
[0112] The radar device 1 further establishes a fifth propagation channel 74 from the first
antenna 211 coupled to the second common transmit signal port 131 to the first antenna
211 coupled to the first common receive signal port 135, a sixth propagation channel
75 from the second antenna 221 coupled to the second common transmit signal port 131
to the second antenna 221 coupled to the first common receive signal port 135, a seventh
propagation channel 76 from the first antenna 211 coupled to the second common transmit
signal port 131 to the first antenna 211 coupled to the second common receive signal
port 136, and an eight propagation channel 77 from the second antenna 221 coupled
to the second common transmit signal port 131 to the second antenna 221 coupled to
the second common receive signal port 136.
[0113] The first set of propagation channels is established by the first signal portions
transduced via the first antennas 211. It comprises the first propagation channel
70, the third propagation channel 72, the fifth propagation channel 74 and the seventh
propagation channel 76. The second set of propagation channels is established by the
second signal portions transduced via the second antennas 221. It comprises the second
propagation channel 71, the fourth propagation channel 73, the sixth propagation channel
75 and the eighth propagation channel 77.
[0114] With the radar device 1 shown in Fig. 1, the individual antennas 211, 221 may each
comprise a single antenna element or several antenna elements. The antenna elements
forming a single antenna 211, 221 are then all connected to a single common signal
port 130, 131, 135, 136 of the radar circuit 100. Each common signal port 130, 131,
135, 136 is connected to at least a first antenna element that is part of one of the
first antennas 211 and a second antenna element that is part of one of the second
antennas 221.
[0115] Each antenna 211, 221 is connected via a single signal port 130, 131, 135, 136 to
the radar circuit 100. The individual signal portions 11, 12, 16, 17, 21, 22, 26,
27 of the radar signals 10, 15, 20, 25 then constitute individual antenna signals,
each antenna signal being transduced by a separate antenna 211, 221.
[0116] Alternative embodiments of the radar device 1 shown in Fig. 1 may comprise more than
two transmit chains 125, 126 and common transmit signal ports 130, 131, for example
three transmit chains and three associated transmit signal ports, as well as more
than two receive chains 127, 128 and common receive signal ports 135, 136, for example
four receive chains and four associated receive signal ports. To each signal port,
a first antenna and a second antenna may be coupled and the individual radar signals
routed via the individual signal ports may each comprise a first signal portion occupying
the first frequency band and a second frequency portion occupying the second frequency
band. The antenna device may then be configured to transduce the individual first
signal portions as first antenna signals via the first antennas and the individual
second signal portions as second antenna signals via the second antennas. The individual
first signal portions may differ among each other at least in a first separability
parameter and the individual second signal portions may differ among each other at
least in the second separability parameter.
[0117] Fig. 2 shows a first transmission 51 of the first antennas 211 versus frequency 30 and a
second transmission 52 of the second antennas 221 versus frequency 30. The first transmission
51 exceeds a minimum transmission 42 in the first frequency band 31 between a first
minimum frequency 32 and a first maximum frequency 33 and the second transmission
52 exceeds the minimum transmission 42 in the second frequency band 34 between a second
minimum frequency 35 and a second maximum frequency 36.
[0118] The first minimum frequency 32 may amount to 75.5 GHz and the second maximum frequency
36 may amount to 81.5 GHz. The first maximum frequency 33 may amount to 77.5 GHz and
the second minimum frequency 35 may amount to 79.5 GHz.
[0119] As can be seen from Fig. 2, the first frequency band 31 and the second frequency
band 34 are separated from each other and do not overlap. The first signal portions
11, 16, 21, 26 of the radar signals 10, 15, 20, 25 processed by the radar circuit
100 of the radar device 1 shown in Fig. 1 occupy the first frequency band 31 and the
second signal portions 12, 17, 22, 27 of the radar signals 10, 15, 20, 25 occupy the
second frequency band 34. In alternative embodiments of the radar device 1, the frequency
bands 31, 34 may alternatively be defined by two separate minimum transmissions that
differ from each other.
[0120] Fig. 3 shows the frequency 30 of the first radar signal 10 and the second radar signal 15
generated by the signal generator 105 of the radar device 1 shown in Fig. 1 over time
60. The frequency 30 of the radar signals 10, 15 is repeatedly cycled through the
second frequency band 34 and the first frequency band 31. In the exemplary embodiment
shown in Fig. 3, the frequency 30 of the radar signals 10, 15 is first linearly swept
in the second frequency band 34 from the second maximum frequency 36 to the second
minimum frequency 35 and is then linearly swept in the first frequency band 31 from
the first maximum frequency 33 to the first minimum frequency 32. Subsequently, this
cycle or burst is repeated. The frequency 30 of the first and second radar signals
20, 25 measured by the signal receiver 110 has the same time-dependence as the radar
signals 10, 15 shown in Fig. 3. Between the second frequency band 34 of the first
signal portions 11, 16, 21, 26 and the first frequency band 31 of the second signal
portions 12, 17, 22, 27, a frequency gap is located that spans the frequencies between
the second minimum frequency 35 and the first maximum frequency 33.
[0121] In alternative embodiments, a different frequency sweep may be employed within the
first frequency band 31 and/or within the second frequency band 34. For example, the
frequency 30 may be swept from lower frequencies to higher frequencies. The frequency
sweep may also start with a sweep over the first frequency band 31 instead of starting
with the sweep over the second frequency band 34.
[0122] Fig. 4 shows a second embodiment of the radar device 1 according to the present disclosure.
As far as no differences are apparent from the description and the drawings, the radar
device 1 of the second embodiment is configured as it is described and shown in connection
with the radar device 1 according to the first embodiment shown in Fig. 1 and vice
versa.
[0123] Besides the first common transmit signal port 130 and the second common transmit
signal port 131 shown in Fig. 1, the radar circuit 100 may comprise further common
transmit signal ports, for example one further common transmit signal port 133, as
shown in Fig. 4. Analogously, the radar circuit 100 may comprise further common receive
signal ports, for example two further common receive signal ports 137, as shown in
Fig. 4.
[0124] Each common signal port 130, 131, 133, 135, 136, 137 is coupled via a common signal
line 205 to an individual signal routing device 230. Each signal routing device 230
has a first port 231 and a second port 232. Each first port 231 is coupled to an individual
first antenna 211 transducing in the first frequency band 31 and each second port
232 is coupled to an individual second antenna 221 transducing in the second frequency
band 34. The first antennas 211 each comprise a set of serially coupled first antenna
elements 213 and the second antennas 221 each comprise a set of serially coupled second
antenna elements 223.
[0125] The signal generator 105 is controlled to generate individual radar signals for every
common transmit signal port 130, 131, 133, each radar signal having a first signal
portion occupying the first frequency band 31 and a second signal portion occupying
the second frequency band 34. The individual first signal portions all differ in a
first separability parameter and the individual second signal portions all differ
in a second separability parameter.
[0126] The signal processing device 120 of the radar device 1 shown in Fig. 4 is configured
to evaluate a total of twenty-four propagation channels comprising a first set of
twelve propagation channels operating in the first frequency band 31 and a second
set of twelve propagation channels operating in the second frequency band 34. The
propagation channels of the first set comprise all pairs of one of the first antennas
211 coupled to the common transmit signal ports 130, 131, 133 and one of the first
antennas 211 coupled to the common receive signal ports 135, 136, 137. The propagation
channels of the second set comprise all pairs of one of the second antennas 221 coupled
to the common transmit signal ports 130, 131, 133 and one of the second antennas 221
coupled to the common receive signal ports 135, 136, 137.
[0127] The signal routing device 230 may be configured as a frequency selective device.
Fig. 5 shows an exemplary embodiment of such a frequency selective signal routing device
230. The common signal line 205 is directly and in parallel coupled to a first transmission
line segment 236 and a second transmission line segment 237 of a frequency selective
section 235 of the signal routing device 230. The first line segment 236 is coupled
via a first filter 238 of the frequency selective section 235 to the first port 231
and the second line segment 237 is coupled via a second filter 239 of the frequency
selective section 235 to the second port 232.
[0128] The first line segment 236 has an electric length of 0° and the second line segment
237 has an electric length of 170°, both at a center frequency that is located between
the first minimum frequency 32 and the second maximum frequency 36. The first filter
238 and the second filter 239 are configured as bandpass filters, the first filter
238 having a center frequency that corresponds to the center frequency of the first
frequency band 31 and the second filter 239 having a center frequency that corresponds
to the center frequency of the second frequency band 34.
[0129] The signal routing device 230 may also be configured as a switching device like it
is shown in an exemplary embodiment in
Fig. 6. The switching device 23 is connected via a control line 102 to the signal processing
device 120 and receives a switch control signal from the signal processing device
120 via the control line 102. Depending on the state of the switch control signal,
the signal switching device 230 conductively couples the first signal port 231 or
the second signal port 232 to the common signal line 205. The signal processing device
120 is configured to change the state of the switch control signal simultaneously
with the control signals 121, 122 determining the frequency of the transmit radar
signals 10, 15 generated by the signal generator 105 of the radar circuit 100 so that
the first port 231 is conductively coupled to the common signal line 205 when the
first portions 11, 16 of the transmit radar signals 10, 15 are routed between the
antenna device 200 and the radar circuit 100 and that the second port 232 is conductively
coupled to the common signal line 205 when the second portions 12, 17 of the transmit
radar signals 10, 15 are routed between the antenna device 200 and the radar circuit
100.
[0130] In alternative embodiment, the switching device 23 may be configured to route signals
from both the first and second frequency band 31, 34 via both first and second port
231, 232. In this case, the first and second signal portions 11, 12, 16, 17, 21, 22,
26, 27 of the radar signals 10, 15, 20, 25 may span both frequency bands 31, 34. The
antenna device 200 may then alternately transduce either the first signal portions
11, 16, 21, 26 or the second signal portions 12, 17, 22, 27 in a time multiplexed
manner.
[0131] Fig. 7 shows another embodiment of the signal routing device 230. According to this embodiment,
the signal routing device 230 comprises a plurality of filters that are directly coupled
between the common signal line 205 and the individual antennas coupled to the common
signal line 205. The plurality of filters comprises a first filter 281 and a second
filter 282. The first filter 281 is coupled between the first signal port 231 leading
to antenna elements 213 of the first antenna 211 and the common signal line 205 and
the second filter is coupled between the second signal port 232 leading to antenna
elements 223 of the second antenna 221 and the common signal line 205.
[0132] The first filter 281 configured to pass the first signal portion 11, 16, 21, 26 and
to block the second signal portion 12, 17, 22, 27 of the radar signal 10, 15, 20,
25. The second filter 282 is configured to pass at least the second signal portion
12, 17, 22, 27. It may additionally be configured to block the first signal portion
11, 16, 21, 26.
[0133] As can be seen from Fig. 7, the signal routing device 230 according to the present
disclosure may generally comprise additional signal ports that couple additional antennas
or antenna elements of additional antennas to the common signal line and to the common
signal port 130, 131, 135, 136 of the radar circuit 100. The signal routing device
213 may then comprise additional filters that only pass one of the additional signal
portions of the radar signal and block all other signal portions of the radar signal.
For example, the signal routing device 230 may comprise a third port 233 that is coupled
to antenna elements 228 of a third antenna 229. The third port 233 is coupled via
a third filter 283 to the common signal line 205. The third filter 283 is configured
to pass a third signal portion of the radar signal 10, 15, 20, 25 that occupies a
third frequency band and to block the first signal portion 11, 16, 21, 26 and/or the
second signal portion 12, 17, 22, 27 of the radar signal. Likewise, the antenna elements
of the third antenna 229 are configured to transduce the third signal portion.
[0134] Analogously to the signal routing device 230 shown in Fig. 7, also the signal routing
devices 230 shown in Figures 5 and 6 may be coupled between more than two antennas
or antenna elements of more than two antennas and the common signal line 205. These
signal routing devices 230 may route individual signal portions occupying separate
frequency bands to the individual antennas coupled to their signal ports. In general,
signal routing devices 230 having separate filters coupled between individual antennas
or antenna elements of individual antennas and the common signal line 205 may be used
instead of the multiplexers or diplexers described in the present disclosure.
[0135] Fig. 8 shows a first antenna 211 and a second antenna 221 that are both inductively coupled
to a common signal line 205 and a common signal port 204 and that may be used with
the antenna devices 200 according to the present disclosure. Inductive coupling between
the antennas 211, 221 and the common signal line 205 is achieved by placing the antennas
211, 221 or individual antenna elements of the antennas 211, 221 in the proximity
of the common signal line 205 so that the electromagnetic field generated by the signal
line 205 couples to the antennas 211, 221. In alternative embodiments, one of the
first and second antennas 211, 221 may be conductively coupled to the common signal
line 205 and the other one of the antennas 211, 221 may be inductively coupled to
the signal line 205 or to the antenna 211, 221 that is conductively coupled to the
signal line 205.
[0136] Fig. 9 shows an alternative embodiment of a first antenna 211 and a second antenna 221 that
are coupled via a common signal line 205 to a common signal port 204 and that may
be used with the antenna devices 200 according to the present disclosure. In this
embodiment, the first antenna 211 and the second antenna 221 are serially coupled
to the common signal line 205 and a filter element 285 is placed between the first
antenna 211 and the second antenna 221. The filter element 285 is configured to block
the first signal portion of the radar signal transduced via the common signal port
204 and to pass the second signal portion of the radar signal to the second antenna
221.
[0137] As it is shown in Fig. 9, further antennas 229 may be coupled to the common signal
line 205 behind the second antenna 221. The individual further antennas 229 may each
transduce a separate signal portion of the radar signal. In this case, the filter
element 285 passes all signal portions but the first signal portion radiated by the
first antenna 211. Additionally, each further antenna 229 is coupled via a further
filter element 286 to the preceding antennas 211, 221, 229. The individual further
filter elements 286 each pass all signal portions radiated by the further antennas
229 that are coupled to the common signal line 205 behind the respective further filter
element 286 and block all signal portions of the radar signal that are radiated by
the antennas 211, 221, 229 coupled to the common signal line 205 in front of the respective
further filter element 286. Each antenna shown in Fig. 9 may comprise several antenna
elements coupled to each other.
[0138] Fig. 10 shows an implementation of the serial coupling of the first antenna 211 and the second
antenna 221 shown in Fig. 9 using array antennas that are configured as slotted waveguide
antennas. The radar signal 10 propagates from the common signal line 205 via the waveguide
of the first antenna 211 to the filter element 285, where the first signal portion
11 of the radar signal 10 is blocked and the second signal portion 12 is passed into
the waveguide of the second antenna 221. With the antenna device shown in Fig. 10,
the first antenna 211 may be configured to only transduce the first signal portion
11 and the second antenna 221 may be configured to only transduce the second signal
portion 12.
[0139] Fig. 11 shows a third embodiment of the radar device 1. As long as no differences are apparent
from the description or the figures, the third embodiment of the radar device 1 is
configured as it is described for the second embodiment and vice versa.
[0140] The third embodiment of the radar device 1 does not comprise the signal routing devices
230 of the second embodiment. Instead, the first antennas 211 and the second antennas
221 are serially coupled to the common signal lines 205. The first antennas 211 are
only resonant within the first frequency band 31 and therefore only transduce the
first signal portions of the radar signals and the second antennas 221 are only resonant
within the second frequency band 34 and therefore only transduce the second signal
portions of the radar signals. The first antennas 211 are configured as array antennas
that comprise leaky traveling waveguide antenna elements and the second antennas 221
are configured as array antennas that comprise series-fed antenna elements.
[0141] Fig. 12 shows an exemplary placement of the antennas 211, 221 of the third embodiment of
the radar device 1 on a front surface of the antenna device 200. The antennas 211,
221 of the second embodiment of the radar device 1 may be placed in an analogous way,
as it is shown in Fig. 13.
[0142] The first antennas 211 form a first set 210 of antennas that are arranged in a first
MIMO array along a first direction 201 and the second antennas 221 form a second set
220 of antennas that are arranged in a second MIMO array along a second direction
202 that is perpendicular to the first direction 201. The second antennas 221 are
displaced with respect to each other along the second direction 202. Although not
shown in Fig. 12 and 13, the first antennas 211 are displaced with respect to each
other along the first direction 201 analogously to the displacement of the second
antennas 221 along the second direction 202.
[0143] The second transmit antennas 221 that are coupled to the common transmit ports 130,
131, 133 have a first transmit distance 271 between a first one and a second one of
the second receive antennas 221 and a second transmit distance 272 between the second
one and a third one of the second transmit antennas 221.
[0144] The first transmit distance 271 may, for example, amount to half a wavelength at
a selected frequency and the second transmit distance 272 may amount to the wavelength
at the selected frequency. The selected frequency may lie within the second frequency
band 34 and may amount to the center frequency of the second frequency band 34, for
example.
[0145] The second receive antennas 221 that are coupled to the common receive ports 135,
136, 137 have a first receive distance 273 between a first one and a second one of
the second receive antennas 221, a second receive distance 274 between the second
one and a third one of the second receive antennas 221, and a third receive distance
275 between the third one and a fourth one of the second receive antennas 221. The
first receive distance 273 may amount to 0.7-times the wavelength at the selected
frequency, the second receive distance 274 to 1.5-times times the wavelength at the
selected frequency and the third receive distance 275 to 3.5-times the wavelength
at the selected frequency.
[0146] The signal processing device 120 of the radar device 1 is configured to construct
from the first signal portions transduced via the first antennas 211 a first virtual
antenna array that extends along the first direction 201 and that resolves targets
along the first direction 201 and to construct from the second signal portions transduced
via the second antennas 221 a second virtual antenna array that extends along the
second direction 202 and resolves targets along the second direction 202. The first
and second antenna array each are configured as MIMO arrays.
[0147] Although shown in connection with the third embodiment of the radar device 1, the
antenna arrangement of Fig. 12 that forms a first virtual array along the first direction
201 and a second virtual array along the second direction 202 may also be realized
with the second embodiment of the radar device 1 that employs the signal routing devices
230 and is shown schematically in Fig. 4. The corresponding arrangement of the antennas
211, 221 of the second embodiment of the radar device 1 is shown in
Fig. 13. As far as no differences are apparent from the description and the drawings, the
antenna placement shown in Fig. 13 is configured as it is described and shown in connection
with the antenna placement shown in Fig. 12 and vice versa.
[0148] With the antenna devices 200 of the preceding Figures, the first antennas 211 and
the second antennas 221 that are coupled to a common signal port 130, 131, 133, 135,
136, 137 of the radar circuit 100 are configured as separate antennas that are positioned
at different locations of the antenna device 200 and consequently transduce radiation
fields that have phase centers that are shifted with respect to each other. In alternative
embodiments, first antennas 211 and second antennas 221 that are coupled to a common
signal port 130, 131, 133, 135, 136, 137 may also coincide and be located at the same
position on the antenna device 200, as it is exemplarily shown in
Fig. 14 in connection with a fourth embodiment of the radar device 1 according to the present
disclosure.
[0149] As far as no differences are apparent from the description and the drawings, the
radar device 1 of the fourth embodiment is configured as it is described and shown
in connection with the radar device 1 according to the third embodiment shown in Fig.
11 and vice versa.
[0150] In the fourth embodiment of the radar device, 1, the individual first and second
antennas 211, 221 that are together coupled to a common signal port 130, 131, 133,
135, 136, 137, 137 are colocated and the corresponding first and second antenna elements
213, 223 coincide. The resulting common antennas 218 are configured as dual-polarized
antennas that transduce radiation in the first frequency band 31 with a first polarization
and that transduce radiation in the second frequency band 34 with a second polarization.
The second polarization may be orthogonal to the first polarization. The first polarization
may be linear polarization along a first polarization direction 206 and the second
polarization may be linear polarization along a second polarization direction 207
that is perpendicular to the first polarization direction 206.
[0151] With the common antennas 218 shown in Fig. 14, separate phase centers of the first
and second antennas 211, 221 coupled to a common signal port 130, 131, 133, 135, 136,
137 are realized by generating the corresponding first and second antenna signals
having different frequencies and by configuring the common antennas 218 as series
fed array antennas. The different frequencies of the first and second antenna signals
then result in the individual antenna elements 213, 223 of the series fed array antennas
218 transducing first and second antenna signal with different amplitudes and phases.
This, in turn also results in the first and second antennas 211, 221 of the common
antennas 218 having shifted phase centers with respect to each other.
[0152] In other alternative embodiments of the radar devices 1 of the present disclosure,
the first antennas 211 and the second antennas 221 may be shaped and/or positioned
to have fields of view with different extends along a lateral direction. As it is
shown in
Fig. 15, the first antennas 211 may be positioned to have a first field of view 240 and the
second antennas 221 may be positioned to have a second field of view 242. The first
field of view 240 has a first extent 241 along the lateral direction 203, which is
larger than a second extent 243 of the second field of view 242 along the lateral
direction 203. The lateral direction 203 may be, for example, the first direction
201 or the second direction 202 shown in Figs. 12 to 14.
[0153] A first propagation channel 70 between the radar device 1 and a target object 3 that
is located inside the first field of view 240 and outside the second field of view
242 comprises a signal path that is established by the first antennas 211 of the radar
device 1. Likewise, a second propagation channel 71 between the radar device 1 and
a further target object 4 that is located inside the second field of view 242 and
outside the first field of view 240 comprises a signal path that is established by
the second antennas 221 of the radar device 1. The signal processing device 120 is
configured to detect reflections from the target object 3 that are received via the
first propagation channel 70 using and analyzing the first signal portions 11, 16,
21, 26 and to detect reflections from the further target object 4 that are received
via the second propagation channel 71 by using and analyzing the second signal portions
12, 17, 22, 27. An additional target object 5 that is located inside the first and
second field of view 240, 242 is irradiated by both the first antennas 211 and the
second antennas 221.
[0154] Fig. 16 shows an exemplary placement of antenna elements 213, 222, 223 of the first and second
antennas 211, 221 that realizes the fields of view 240, 242 shown in Fig. 15. The
first transmit antennas 211 coupled to the common transmit signal ports 130, 131,133
and the first receive antennas 211 coupled to the common receive signal ports 135,
136, 137 each comprise first antenna elements 213 only. At least some of the second
transmit antennas 221 coupled to the common transmit signal ports 130, 131,133 and
at least some of the second receive antennas 221 coupled to the common receive signal
ports 135, 136, 137, namely the second transmit antennas 211 and second receive antennas
221 positioned at the outer sides of the arrangements of second antenna elements 223
in the lateral direction 203, comprise second antenna elements 223 as well as additional
antenna elements 222. The additional antenna elements 222 are placed at the outer
sides of the second antenna elements 223 in the lateral direction 203.
[0155] The additional antenna elements 222 may be passive elements that have no conductive
coupling to the common signal ports 130, 131, 133, 135, 136, 137 of the radar circuit
100. Alternatively, they may be active elements that actively transduce radar signals
that are routed via the common signal ports 130, 131, 133, 135, 136, 137. For example,
the additional antenna elements 222 may be serially coupled to the second antennas
221 located at the outer positions of the second antennas 221 and may transduce in
the second frequency band 34 only. Alternative embodiments of the first and second
antennas 211, 221 shown in Fig. 16 may feature additional antenna elements 222 positioned
at the sides of all second antennas 223.
[0156] Fig. 17 shows another exemplary placement of the antenna elements 213, 223 of first and second
antennas 211, 221 that realizes the fields of view shown in Fig. 15. The first antenna
211 has two sets of serially coupled first radiating elements 213 that are coupled
in parallel to the first signal port 131 of the signal routing device 230. Likewise,
the second antenna 221 has two sets of serially coupled second radiating elements
223 that are coupled in parallel to the second signal port 132 of the signal routing
device 230. The sets of serially coupled first radiating elements 213 are placed next
to each other in the lateral direction 203 and the two sets of serially coupled second
radiating elements 223 are placed on both sides of the sets of first radiating elements
213 in the lateral direction 203.
[0157] In addition to the second antenna elements 223, the second antenna 221 also comprises
the first antenna elements 213 and the first antenna elements 213 are configured to
transduce both in the first frequency band 31 and in the second frequency band 34.
The signal routing device 230 is configured to route the first signal portion 11 of
the radar signal 10 only between the first antenna elements 213 and the common signal
port 130 and to route the second signal portion 221 of the radar signal 10 between
the common signal port 130 and both the second antenna elements 223 and the first
antenna elements 213. Consequently, the antenna device 200 transduces radar signals
in the first frequency band 31 only via the first radiating elements 213 and it transduces
radar signals in the second frequency band 34 via both the first radiating elements
213 and the second radiating elements 223.
[0158] The first radiating elements 213 and the second radiating elements 223 are arranged
in a way that the first radiating elements 213 form a first antenna array and that
the second radiating elements 223 together with the first radiating elements 213 form
a second antenna array with a narrower beam solid angle than the first antenna array.
The first antenna array and/or the second antenna array may be configured as phased
arrays.
[0159] In all embodiments of the radar device 1 according to the present disclosure, further
antennas may be coupled to the individual common signal ports 130, 131, 133, 135,
135, 136, 137 besides the first antennas 211 and the second antennas 221. The antenna
device 200 may then transduce electromagnetic radiation via the individual antennas
in mutually separate frequency bands so that mutually separate signal portions of
the radar signals routed via the common signal ports 130, 131, 133, 135, 135, 136,
137 may each be transduced via a specific individual antenna coupled to the respective
signal port 130, 131, 133, 135, 135, 136, 137. For example, the signal routing devices
230 shown in Figs. 4, 5, 6, 7 and 13 and 17 all may have an additional port for each
further antenna coupled to the respective common signal port 130, 131, 133, 135, 135,
136, 137. Also, more than two antennas 211, 221 may be proximity coupled to the common
signal line 205 shown in Fig. 8 and more than two antennas 211, 221 may be serially
coupled to the common signal lines 205 shown in Figs. 10, 11, 12 and 16.
[0160] The radar devices 1 described in connection with the previous Figures are configured
as distance sensing radar devices that employ frequency modulated continuous wave
radar signals, for example the frequency modulated radar signals 10, 15 shown in Figs.
2 and 3. The signal processing devices 120 of the radar devices 1 are configured to
jointly process the first and second radar signals 10, 15, 20, 25 and to use both
the first and second frequency band 31, 34 to determine the distance to target objects
that are located within a common field of view 240, 242 of both the first and second
antennas 211, 221, such as the additional target object 5 shown in Fig. 15.
[0161] Fig. 18 schematically shows a signal processing device 120 that may be used with the radar
devices 1 of the present disclosure and the radar signals 10, 20 shown in Fig. 3.
The signal processing device 120 is configured to jointly process the signal portions
11, 12 of the first transmit radar signal 10 that are transduced via transmit antennas
211, 221 coupled to a first common transmit signal port 130 together with the signal
portions 21, 22 of the first receive radar signal 20 that are transduced via receive
antennas 211, 221 coupled to a first common receive signal port 135. After receiving
the first receive radar signal 20 containing the first signal portion 21 and the second
signal portion 22 via the first common receive signal port 135, a first receive chain
127 generates a first radar data signal 123 representing the first and second signal
portion 21, 22.
[0162] The first radar data signal 123 is received by a splitting module 140 that is configured
to separate the portion of the first radar data signal 123 that represents the first
signal portion 21 from the portion that represents the second signal portion 22. The
data representing the first signal portion 21 is evaluated by a first evaluation module
144 to evaluate reflection via a first propagation channel 70 shown in Fig. 1 and
the data representing the second signal portion 22 is evaluated by a second evaluation
module 145 that evaluates reflection via the third propagation channel 72 shown in
Fig. 1. Additionally, the splitting model 140 routes all data corresponding to the
first and second signal portions 21, 22 received from the receive chain 127 to a ranging
module 142. The ranging module 142 is configured to jointly process the data from
the first and second signal portions 21, 22 to determine the distance to the target
object 5 irradiated by the antenna device 200.
[0163] For determining the distance to the target object 5 from the signal portions 21,
22 of the receive radar signal 20, the ranging module 142 is configured to determine
a phase shift of the receive radar signal 20 that is transduced via the receive antennas
211, 221 with respect to the transmit radar signal 10 that is transduced via the transmit
antennas 211, 221. To this end, the ranging module 142 comprises a mixing module 151
that mixes the transmit radar signal 10 containing the first and second signal portion
11, 12 with the receive radar signal 20 containing the first and second signal portions
21, 22 to generate an intermediate signal 152 at an intermediate frequency that equals
the instantaneous frequency difference between the first receive radar signal 20 and
the first transmit radar signal 10. The radar circuit may employ the linear frequency
sweeps shown in Fig. 3, in which case the intermediate frequency is constant over
time.
[0164] The frequency of the intermediate signal 152 is a measure for the phase shift that
the first radar signal acquires upon reflection at the target object. To determine
the distance of the target object, the ranging module 142 comprises a measurement
module 154 that measures the intermediate frequency and determines the target distance
from the measured intermediate frequency. For measuring the target distance, the measurement
module 154 may perform a Fourier transform, for example a fast Fourier transform (FFT),
on the intermediate signal 152. Since the minimum resolvable frequency difference
is given by the bandwidth of the intermediate signal 152 and thus the bandwidth of
the signals used to generate the intermediate signal 152, jointly processing the first
and second signal portions 21, 22 increases the resolution of the ranging module 142
compared to a single evaluation of only the first or second signal portion 21, 22.
[0165] With the signal processing device 120 shown in Fig. 18, the splitting module 140,
the evaluation modules 144, 145, the ranging module 142, the mixing module 151 and/or
the measurement module 154 may be realized by software modules or software functions
implemented on one or several logic units of the signal processing device 120. The
individual modules then process the data signals 121, 123 representing the radar signals
10, 20. Alternatively, the splitting module 140, the mixing module 151, the evaluation
modules 144, 145, the ranging module 142 and/or the measurement module 154 may be
integrated in the receive chain 127. These modules may then be configured to directly
process all signal portions 21, 22 of the radar signal 20 at the radar frequencies.
[0166] With all radar devices 1 of the present disclosure, the first antennas 211 may have
the first transmission 51 and the second antennas 221 have the second transmission
52 shown in Fig. 2. The radar signals routed via the common signal ports 130, 131,
133, 135, 136, 37 may then vary in frequency 30 over time 60 as shown in Fig. 3. However,
since the frequency sweep within the first and second frequency bands 31, 34 does
not cover the entire bandwidth between the first minimum frequency 32 and the second
maximum frequency 36, the radar devices 1 cannot use the entire bandwidth between
the first minimum frequency 32 and the second maximum frequency 36 for distance sensing
applications.
[0167] In alternative embodiments of the radar devices 1 according to the present disclosure,
the first transmission 51 of the first antennas 211 and the second transmission 52
of the second antennas 221 are configured as shown in
Fig. 19. In the first frequency band 31, only the first transmission 51 is larger than the
minimum transmission 42, while in the second frequency band 34, only the second transmission
52 is larger than the minimum transmission 42. In a third frequency band 37, which
is located in between the first frequency band 31 and the second frequency band 34,
both the first transmission 51 and the second transmission 52 are larger than the
minimum transmission 42.
[0168] Therefore, only the first antennas 211 and not the second antennas 221 transduce
in the first frequency band 31, while in the second frequency band 34 only the second
antennas 221 and not the first antennas 211 transduce. In the third frequency band
37, the first transmissions 51 of the first antennas 211 and the second transmissions
52 of the second antennas 221 overlap and both the first antennas 211 and the second
antennas 221 transduce in the third frequency band 37.
[0169] The first, second and third frequency bands 31, 34, 37 directly join with each other
so that the first maximum frequency 33 equals a third minimum frequency 38 of the
third frequency band 37 and the second minimum frequency 35 equals a third maximum
frequency 39 of the third frequency band 37. With the transmissions 51, 52 shown in
Fig. 19, the antenna device 1 continuously transduces over the combined frequency
band between the first minimum frequency 32 of the first frequency band 31 and the
second maximum frequency 34 of the second frequency band 34.
[0170] Fig. 20 shows individual bursts of a radar signal 10 routed via the common signal port to
or from the first and second antennas 211, 221 having the transmissions 51, 52 shown
in Fig. 19. The radar signal 10 comprises continuous linear frequency sweeps from
the second maximum frequency 34 down to the first minimum frequency 32. These frequency
sweeps span the first signal portion 11 occupying the first frequency band 31, a third
signal portion 13 occupying the third frequency band 37 and the second signal portion
12 occupying the second frequency band 34. The frequency sweeps all have the same
slope within the individual frequency bands 31, 34, 37. Target objects that are located
in the common field of view 240, 242 of the first antennas 211 and the second antennas
221 are irradiated with electromagnetic radiation spanning the complete frequency
band between the first minimum frequency 32 and the second maximum frequency 34.
[0171] With the bursts shown in Fig. 20, the signal processing device 120 may use the first,
second and third frequency bands 31, 34, 37 for determining the distance to the target
object. Additionally, it may only use the first signal portions 11, 16, 21, 26 of
the radar signals 10, 15, 20, 25 that occupy the first frequency band 31 to detect
reflections via the first propagation channels and it may only use the second signal
portions 12, 17, 22, 27 of the radar signal 10, 15, 20, 25 that occupy the second
frequency band 34 to detect reflections via the second propagation channels.
[0172] With the radar devices 1 of the previous Figures, the individual antennas 211, 221
are each coupled to a single signal port 130, 131, 133, 135, 136, 137. The first and
second signal portions 11, 12, 16, 17, 21, 22, 26, 27 of the individual radar signals
10, 15, 20, 25 then constitute separate antenna signals representing the radiation
fields of the individual antennas 211, 221. The antenna signals are entirely routed
as the separate signal portions 11, 12, 16, 17, 21, 22, 26, 27 over a single port
130, 131, 133, 135, 136, 137 of the radar circuit 100.
[0173] The first and second antennas 211, 221 shown in Figures 1, 4, 7 to 13 and 16 are
each placed at separate locations on the antenna device 200 and therefore have phase
centers located at different positions. Consequently, these antennas 211, 221 radiate
the first signal portion 11, 16, 21, 26 and the second signal portion 12, 17, 22,
27 from different physical locations on the antenna device 200.
[0174] The first and second antennas 211, 221 shown in Figures 14 and 17 have co-located
phase centers that are positioned at the same location on the antenna device 200 and
radiate the first signal portion 11, 16, 21, 26 and the second signal portion 12,
17, 22, 27 from the same physical location. While the first and second antennas 211,
221 of the radar device 1 shown in Fig. 14 that are coupled to the same common signal
port 130, 131, 133, 135, 136, 137 comprise the same set of dual-frequency antenna
elements 213, 223, the individual first and second antennas 211, 221 of the radar
device shown in Fig. 17 that are coupled to the common signal port 130 have different
sets of antenna elements 213, 223. The antenna elements 213, 223 are arranged to generate
co-located phase centers of the first and second antenna 211, 221, whereby these phase
centers are positioned at the center between the two sets of serially coupled antenna
elements 213 of the first antenna 211.
[0175] The radar devices 1 where first and second antennas 211, 221 coupled to a common
signal port 130, 131, 133, 135, 136, 127 have separate phase centers may use the separate
phase centers to establish different propagation channels and to form a virtual antenna
array, such as a MIMO array, from the individual propagation channels. For example,
the processing unit of these radar devices 1 may use the location of first phase centers
of the first antennas 211 as first antenna positions and the location of second phase
centers of the second antennas 221 as second antenna positions. The locations of the
corresponding phase centers thereby correspond to the phase centers of the radiation
patterns associated with the antennas 211, 221. The angular position of a target object
may then be determined by evaluating the phase shifts that the individual radar signals
acquire when propagating via the different propagation channels established by the
spatially separated antennas.
[0176] Fig. 21 illustrates a further embodiment of a radar device 1 according to the present disclosure
that routes two antenna signals via a common signal port and transduces the antenna
signals routed via the common signal port with separate phase centers. As far as no
differences are described or apparent from the Figures, the radar device 1 is configured
as it is disclosed in connection with the radar devices 1 shown in Figures 1, 4, 7
to 13 and 16.
[0177] A radar circuit 100 of the radar device 1 has a first signal port 130 and a second
signal port 131. The first and second signal port 130, 131 are each configured as
common signal ports to each of which a first antenna 211 transducing electromagnetic
radiation with a first phase center 301 and a second antenna 221 transducing electromagnetic
radiation with a second phase center 302 are connected. The first antennas 211 each
transduce a first antenna signal occupying a first frequency band and the second antennas
221 each transduce a second antenna signal occupying a second frequency band.
[0178] The first phase centers 301 of the first antennas 211 connected to the first and
second common signal port 130, 131 are shifted with respect to each other by a first
distance 305 along a first direction 201 and are positioned at the same location in
a second direction 202 that is perpendicular to the first direction 201. Consequently,
from the first antenna signals transduced via the first antennas 211, a virtual antenna
array may be constructed that resolves the angular position of a target object along
the first direction 201. The second phase centers 302 of the second antennas 221 connected
to the first and second common signal port 130, 131 are shifted with respect to each
other by a second distance 306 along the second direction 202 and are positioned at
the same location in the first direction 201. From the second antenna signals transduced
via the second antennas 221, a virtual antenna array may be constructed that resolves
the angular position of the target object along the second direction 202.
[0179] As can also be seen from Fig. 21, the phase centers 301, 302 of the first and second
antenna 211, 221 connected to the first common signal port 130 are located at the
same position in the first direction 201 and are shifted with respect to each other
by the second distance 306 along the second direction 202. Furthermore, the phase
centers 301, 302 of the first and second antenna 211, 221 connected to the second
common signal port 131 coincide both in the first and in the second direction 201,
202.
[0180] The first antennas 211 frequency selectively transduce in a first frequency band
and the second antennas 221 frequency selectively transduce in a second frequency
band that is separate from the first frequency band. The first common signal port
130 routes a first radar signal 10 that comprises the first antenna signal as a first
signal portion 11 and the second antenna signal as a second signal portion 12. Likewise,
the second common signal port 131 routes a second radar signal 15 that comprises the
first antenna signal as a first signal portion and the second antenna signal as a
second signal portion 17. The first signal portions 11, 16 and first antenna signals
each occupy the first frequency band and the second signal portions 12, 17 and second
antenna signals each occupy the second frequency band.
[0181] Fig. 22 shows a further embodiment of a radar device 1. As far as no differences are described
or apparent from the Figures, the radar device 1 shown in Fig. 22 is configured as
it is disclosed in connection with the radar device 1 of Fig. 21. The radar circuit
100 of the radar device shown in Fig. 22 comprises a further common signal port 133
to which the additional first and second antennas 211, 221 are connected. The first
antenna 211 connected to the further common signal port 133 has a first phase center
301 and the second antenna 221 connected to the further common signal port 133 has
a second phase center 302. Both the first and second antenna signal are routed as
individual signal portions of a radar signal via the further common signal port 133.
[0182] Like the first and second antennas 211, 221 connected to the first and second common
signal 130, 131, the first antenna 211 connected to the further common signal port
133 frequency selectively transduces a first antenna signal occupying the first frequency
band and the second antenna 221 connected to the further common signal port 133 frequency
selectively transduces a second antenna signal occupying the second frequency band.
[0183] With the radar device of Fig. 22, the first and second phase center 301, 302 of the
antennas 211, 221 connected to the second common signal port 131 are separated from
each other by the second distance 306 along the second direction 202 and the first
and second phase centers 301, 302 of the antennas 211, 221 connected to the further
common signal port 133 are aligned with each other in the first direction 201 and
separated from each other along the second direction 202 by twice the second distance
306.
[0184] The individual first phase centers 301 of the first antennas 211 connected to the
individual common signal ports 130, 131, 133 are aligned with each other in the second
direction 202 and separated from each other in the first direction 201 by the first
distance 305. The second phase centers 302 of the second antennas 221 connected to
the first and second common signal port 130, 131 are separated from each other along
the second direction 202 by twice the second distance 306 and the phase center 302
of the second antenna 221 connected to the further common signal port 133 is separated
from the second phase center 302 of the second antenna 221 connected to the second
common signal port 131 by the second distance 306.
[0185] Fig. 23 shows an alternative embodiment of the radar device 1 of Fig. 22. To each of the
common signal ports 130, 131, 133 three individual antennas 211, 221, 229 are connected,
whereby each individual antenna 211, 221, 229 transduces via a separate phase center.
Therefore, each common signal port 130, 131, 133 routes a first antenna signal that
is transduced via a first phase center 301 of the first antenna 211, a second antenna
signal that is transduced with a second phase center 302 of the second antenna 221
and a third antenna signal that is transduced with a third phase center 303 of the
third antenna 229. The individual antenna signals each occupy different frequency
bands.
[0186] The individual third phase centers 303 are aligned with the first and second phase
centers 301, 302 of the antennas 211, 221, 229 connected to the same signal port 130,
131, 133 in the first direction 201. In the second direction 202, the third phase
center 303 of the antenna 229 connected to the first common signal port 130 is positioned
at the same location as the second phase center 302 of the antenna 223 connected to
the third common signal port 133, the third phase center 303 of the antenna 229 connected
to the second common signal port 131 is positioned at the same location as the second
phase center 302 of the antenna 223 connected to the first common signal port 131
and the third phase center 303 of the antenna 229 connected to the third common signal
port 133 is positioned at the same location as the second phase center 302 of the
antenna 223 connected to the second common signal port 132.
[0187] The antennas 229 having the third phase centers 303 realize an additional antenna
array for resolving the angular position of the target object in the second direction
202. The antennas 223 having the second phase center 302 may differ from the antennas
229 having the third phase center 303 in at least one antenna parameter like gain,
field of view, polarization or the like.
[0188] Transducing antenna signals occupying separate frequency bands with separate phase
centers is, for example, accomplished by the antenna devices 200 shown in Figures
1, 4, 7 to 13 and 16. All these antenna devices 200 feature individual antennas 211,
221, 229 that consist of separate sets of radiating elements 213, 223, 228. Alternatively,
frequency selective transducement of antenna signals with separate phase centers may
also be realized with antennas that share common sets of radiating elements, such
as the antennas shown in the following Figures 24 to 28.
[0189] Fig. 24 shows an antenna device 200 that may be used with the radar devices 1 according to
the present disclosure. It has a first antenna 211, a second antenna 221 and a third
antenna 229 coupled to a common signal port 130 of a radar circuit 100. The first
antenna 211 transduces in a first frequency band, the second antenna 221 transduces
in a second frequency band and the third antenna 229 transduces in a third frequency
band. The first, second and third frequency band are separated from each other and
the second frequency band is located at higher frequencies than the first frequency
band and the third frequency band is located in between the first and second frequency
band. For example, the first frequency band may lie between 76 GHz and 77 GHz, the
second frequency band may lie between 78 GHz and 79 GHz and the third frequency band
may lie between 80 GHz and 81 GHz.
[0190] The antenna device 200 comprises a first set 315 of first antenna elements 213, a
second set 317 of second antenna elements 223 and a third set 318 of third antenna
elements 228. In the second direction 202, the second and third sets 317, 318 of antenna
elements 223, 228 are arranged on opposite sides of the first antenna elements 213
of the first set 315. The antenna elements 213, 223, 228 are configured as individual
radiating slots provided in a waveguide, for example a surface integrated waveguide.
The first antenna 211 consists of the first antenna elements 213 and the third antenna
elements 228, the second antenna 221 consists of the first antenna elements 213 and
the second antenna elements 223 and the third antenna consists of the first, second
and third antenna elements 221, 223, 229.
[0191] The first antenna elements 213 of the first set 315 are directly coupled to the common
signal port 130 and transduce in the first, second and third frequency band. The second
antenna elements 223 of the second set 317 transduce in the second and third frequency
band and the third antenna elements 228 of the third set 318 transduce in the first
and third frequency band. To this end, the second antenna elements 223 of the second
set 317 are coupled to the common signal port 130 by a first filter 310 that is configured
as a high path filter that blocks the first frequency band and passes the second and
third frequency band, whereas the third antenna elements 228 of the third set 318
are coupled to the common signal port 130 by a second filter 311 that is configured
as a low pass filter that blocks the second frequency band and passes the first and
third frequency band. The filters 310, 311 and the common signal line connecting the
antennas 211, 221, 229 to the common signal port 130 may be configured as surface
integrated waveguide devices.
[0192] The first antenna 211 has a first phase center 301, the second antenna 221 has a
second phase center 302 and the third antenna 229 has a third phase center 303. The
phase centers 301, 302, 303 are positioned at the same location in the first direction
201 and are separated from each other along the second direction 202. Thereby, the
third phase center 303 is located in between the first phase center 301 and the second
phase center 302. The antenna elements 213, 223, 228 are distributed above each other
in two rows along the second direction 202 to form array antennas 211, 221, 229 that
have a small field of view along the second direction 202, which may be the elevation
direction with respect to a ground surface on which a vehicle comprising the radar
device 1 travels.
[0193] With the radar device shown in Fig. 24, the first filter 310 is located directly
between the second antenna elements 223 of the second set 317 and the common signal
port 130 and the second filter 311 is located directly between the third antenna elements
228 of the third set 318 and the common signal port 130.
[0194] Fig. 25 depicts an alternative embodiment of the antenna device 200 shown in Fig. 24. With
this embodiment, the first filter 310 is located in between the first antenna elements
213 of the first set 315 and the second antenna elements 223 of the second set 317,
so that the second antenna elements 223 are connected to the common signal port 130
via the first filter 310 and the first set 315 of first antenna elements 213. Likewise,
the second filter 311 is located in between the first antenna elements 213 of the
first set 315 and the third antenna elements 228 of the third set 318, so that the
third antenna elements 228 are connected to the common signal port 130 via the second
filter 311 and the first set 315 of first antenna elements 213.
[0195] The first filter 310 is configured as a high pass filter that only transduces the
second frequency band and the second filter 311 is configured as a low pass filter
that only transduces the first frequency band. Consequently, the first antenna 211
transducing in the first frequency band comprises the first set 315 of first antenna
elements 213 and the third set 318 of third antenna elements 228, while the second
antenna 221 transducing in the second frequency band comprises the first set 315 and
the second set 317 of antenna elements 213, 223 and the third antenna 229 transducing
in the third frequency band only comprises the first set 315 of antenna elements 213.
In alternative embodiments, the first filter 310 may be configured as a high pass
filter that blocks the first frequency band and passes the second and third frequency
band and the second filter 311 may be configured as a low pass filter that blocks
the second frequency band and passes the first and third frequency band. With these
embodiments, the third antenna comprises all sets 315, 317, 318 of antenna elements
213, 223, 228.
[0196] Fig. 26 shows another embodiment of an antenna device 200 for the radar devices 1 according
to the present disclosure. The antenna device 200 has two antennas 211, 221 that are
coupled to a common signal port 130 of a radar circuit 130 and transduce via separate
phase centers 301, 302. As far as no differences are described or apparent from the
figures, the antenna device 200 shown in fig. 26 is configured as disclosed in connection
with the antenna device 200 shown in Fig. 24 and vice versa.
[0197] With the antenna device 200 of Fig. 26, the first set 315 of first antenna elements
213 and the second set 317 of second antenna elements 223 are positioned next to each
other along the first direction 201, which is the azimuth direction. The first antenna
elements 213 and the second antennas 223 are each distributed along two rows extending
in the second direction 202, which is the elevation direction. The antenna elements
213, 223 are configured as individual radiating slots provided in a waveguide, for
example a surface integrated waveguide, whereby the waveguide serially connects the
second antenna elements 223 via the first antenna elements 213 to the common signal
common signal port 130 of the radar circuit 100.
[0198] In between the section of the waveguide containing the first set 315 of antenna elements
213 and the section of the waveguide containing the second set 317 of antenna elements
223, the waveguide has two filters 310 that are configured as low pass filters that
block the first frequency band. Consequently, the first antenna 211 transducing in
the first frequency band comprises the first antenna elements 213 only and the second
antenna 221 transducing in the second frequency band comprises both the first and
second antenna elements 213, 223. The filters 310 are located in the second direction
202 at both ends of the waveguide section that comprises the first antenna elements
213.
[0199] The first antenna 211 then has a first phase center 301 that is located in the middle
of the first set 315 of first antenna elements 213 and the second antenna 221 has
a phase center that is located in between the first and second set 315, 317 of antenna
elements 213, 223, in the center of the antenna structure combining the first and
second antennas 211, 221. The second phase center 302 is shifted with respect to the
first phase center 301 along the first direction 201.
[0200] Fig. 27 shows another alternative embodiment of an antenna device 200 for the radar devices
1 according to the present disclosure, which has a first, second and third antenna
211, 221, 229 coupled to a common signal port 130. As far as no differences are described
or apparent from the Figures, the embodiment shown in Fig. 27 is configured as it
is disclosed for the embodiment shown in Fig. 24.
[0201] With the embodiment shown in Fig. 27, the first set 315 of first antenna elements
213, the second set 317 of second antenna elements 223 and the third set 318 of third
antenna elements 228 are spaced apart from each other along the first direction 201.
Thereby, the first set 315 is located in between the second set 317 and the third
set 318. The antenna elements 213, 223, 228 of the individual sets 315, 317, 318 are
each aligned in two rows along the second direction 202 so that the individual sets
315, 317, 318 of antenna elements 213, 223, 228 form arrays with a narrow field of
view along the second direction 202, which is the elevation direction.
[0202] The first phase center 301 of the first antenna 211 comprising the first and third
set 315, 318 of antenna elements 213, 228 is located along the first direction 201
in between the first and third set 315, 318 of antenna elements 213, 228 and the second
phase center 302 of the second antenna 221 comprising the first and second set 315,
317 of antenna elements 213, 228 is located along the first direction 201 in between
the first and second set 315, 317 of antenna elements 213, 223.
[0203] Fig.
28 shows an alternative embodiment of a first and second antenna 211, 221 of an antenna
device 200 according to the present disclosure. As far as no differences are described
or apparent from the Figures, the embodiment shown in Fig. 28 is configured as it
is disclosed in connection with the embodiment shown in Fig. 7 and vice versa.
[0204] The first antenna 211 and the second antenna 221 are both coupled via a signal routing
device 230 to a common signal port 204 of a radar circuit 100. The radar circuit 100
is configured to route the radar signal shown in Fig. 20 over the common signal port
204, which radar signal has the first signal portion 11 occupying the first frequency
band 31, the second signal portion 12 occupying the second frequency band 34 and the
third signal portion 13 occupying the third frequency band 37.
[0205] The first antenna 211 is configured to transduce the first and third signal portions
11, 13, but not the second signal portion 12 and the second antenna 221 is configured
to transduce the second and third signal portion 12, 13, but not the first signal
portion 11. To this end, the first antenna 211 is coupled via a first filter 281 of
the signal routing device 230 to the common signal port 204 and the second antenna
221 is coupled via a second filter 282 of the signal routing device 230 to the common
signal port 204. The first filter 281 is configured to pass the first and third signal
portion 11, 13 and to block the second signal portion 12, while the second filter
282 is configured to pass the second and third signal portion 12, 13 and to block
the first signal portion 11.
[0206] The first antenna 211 comprises a first set 315 of first antenna elements 213 and
the second antenna 221 comprises a second set 317 of second antenna elements 223.
The first set 315 and the second set 317 are spaced apart from each other along a
first direction 201. This results in a first phase center 301 of the first antenna
211 being centered at the first set 315 of first antenna elements 213 and a second
phase center 302 of the second antenna 221 being centered at the second set 317 of
second antenna elements 223. The first and second phase center 301, 302 are therefore
spaced apart from each other along the first direction 201.
[0207] Since the third signal component 13 is transduced via both the first set 315 of first
antenna elements 213 and the second set 317 of second antenna elements 223, the third
signal component 13 is transduced via a third phase center 303 that is located in
between the first and second phase center 301, 302 along the first direction 201.
[0208] Additionally, the first antenna 211 is configured to transduce the first and third
signal portions 11, 13 having a first linear polarization, which is parallel to the
first direction 201, and the second antenna 221 is configured to transduce the second
and third signal portions 12, 13 having a second linear polarization, which is parallel
to a second direction 202 that is perpendicular to the first direction 201. This results
in the third signal portion 13 being transduced with a third polarization that is
a linear superposition of the first and second polarization. The third polarization
may be a linear polarization at an intermediate direction between the first direction
201 and the second direction 202, for example at a direction that has an angle of
+/- 45° with the first and second direction 201, 202. Alternatively, the third polarization
may be an elliptical polarization.
[0209] Fig.
29 shows an alternative embodiment of the antenna device 200 shown in Fig. 28. With
the antenna device 200 shown in Fig. 29, the first, second and third phase center
301, 302, 303 coincide at the center of the first set 315 of first antenna elements
213. This is achieved by the second antenna elements 223 of the second antenna 221
being placed symmetrically on both sides of the first antenna elements 213 of first
antenna elements 213 along the first direction 201. Consequently, the first, second
and third signal portion 11, 12, 13 of the radar signal routed via the common signal
port 204 are all transduced via the same phase center. However, a first propagation
channel established by the first signal portion 11, a second propagation channel established
by the second signal portion 12 and a third propagation channel established by the
third signal portion 13 all have different polarizations, as well as different gains
and fields of view along the first direction 201.
[0210] Fig. 30 shows a method 400 performed by the radar devices 1 according to the present disclosure.
The method comprises processing radar signals by generating 405 the radar signals
10, 15 having the first signal portion 11, 16 and the second signal portions 12, 17
by the transmit chains 125, 126 of the signal generator 105 of the radar circuits
100. The method then comprises routing 410 the radar signals 10, 15 via the common
transmit signal ports 130, 131, 133 to the antenna device 200. The method 400 further
comprises transducing the first signal portions 11, 16 and the second signal portions
12, 17 by the antenna device 200 by transmitting 415 the first signal portions 11,
16 via the first antennas 211 and the second signal portions 12, 17 via the second
antennas 221.
[0211] The method 400 then comprises transducing the first signal portions 21, 26 of the
received radar signals 20, 25 by receiving 420 the first signals portions 21, 26 via
the first receive antennas 211 and the second signal portions 22, 27 via the second
receive antennas 221 of the antenna device 200, respectively. The method further comprises
routing 425 the radar signals 20, 25 from the antenna device 200 via the common receive
signal ports 135, 136, 137 to the radar circuit 100. The method further comprises
measuring the received radar signals 20, 25 by generating 430 the data signals 123,
124 representing the received radar signals 20, 25 with the receive chains 127, 128.
The method further comprises evaluating the radar signals 20, 25 by jointly processing
445 the first and second antenna signals to determine the distance to the target object
and by differentiating 440 individual propagation channels using the separability
parameter of the radar signals 10, 15, 20, 25.
[0212] Fig. 31 depicts a vehicle 500 that is equipped with a radar device 1 according to the present
disclosure. In the embodiment shown in Fig. 31, the radar device 1 is configured as
a front radar of the vehicle 1 and a radiation field 501 of an antenna device of the
radar device 1 is directed in the forward direction of the vehicle 500. The radar
device 1 is part of a vehicle control system 502 of the vehicle 500 and is connected
to a control device 504 of the vehicle control system 502. The control device 504
is configured to perform advanced driver's assist functions, such as adaptive cruise
control, emergency brake assist, lane change assist or autonomous driving, based on
data signals received from the radar device 1. These data signals represent the positions
of target objects in front of the radar device 1 mounted to the vehicle 500. The control
device 504 is configured to at least partly control the motion of the vehicle 500
based on the data signals received from the radar device 1. For controlling the motion
of the vehicle, the control device 504 may be configured to brake and/or accelerate
and/or steer the vehicle 500.
[0213] Radar devices and methods of the present disclosure include:
- 1. Radar device (1) for automotive applications comprising
a radar circuit (100) for transceiving radar signals (10, 15, 20, 25), a signal processing
device (120) for processing the radar signals (10, 15, 20, 25), and an antenna device
(200) for transducing the radar signals (10, 15, 20, 25),
wherein the radar circuit (100) is configured to handle a radar signal (10, 15, 20,
25) that has a first signal portion (11, 16, 21, 26) and a second signal portion (12,
17, 22, 27),
wherein the first signal portion (11, 16, 21, 26) occupies a first frequency band
(31) and the second signal portion (12, 17, 22, 27) occupies a second frequency band
(34) that is separate from the first frequency band (31),
wherein the antenna device (200) comprises a first antenna element (213) that is part
of a first antenna (211) and a second antenna element (223) that is part of a second
antenna (221),
wherein both the first and second antenna element (213, 223) are coupled to a common
signal port (130, 131, 133, 135, 136, 137) of the radar circuit (100),
wherein the radar device (1) is configured to route both the first signal portion
(11, 16, 21, 26) and the second signal portion (12, 17, 22, 27) via the common signal
port (130, 131, 133, 135, 136, 137) between the radar circuit (100) and the antenna
device (200),
wherein the antenna device (200) is configured as a frequency selective antenna device
(200) that transduces the first signal portion (11, 16, 21, 26) via the first antenna
element (213) and not via the second antenna element (223) and that transduces the
second signal portion (12, 17, 22, 27) at least via the second antenna element (223),
wherein the signal processing device (120) is configured to detect from the first
signal portion (11, 16, 21, 26) target reflections via a first propagation channel
and to detect from the second signal portion (12, 17, 22, 27) target reflections via
a second propagation channel.
- 2. Radar device (1) according to embodiment 1,
wherein the antenna device (200) is configured to transduce the second signal portion
(12, 17, 22, 27) via both the first antenna element (213) and the second antenna element
(223).
- 3. Radar device (1) according to embodiment 1,
wherein the antenna device (200) is configured to block transduction of the second
signal portion (12, 17, 22, 27) via the first antenna element (213).
- 4. Radar device (1) according to one of the preceding embodiments,
wherein the antenna device (200) is configured to transduce the first signal portion
(11, 16, 21, 26) with a first polarization and to transduce the second signal portion
(12, 17, 22, 27) with a second polarization,
wherein the second polarization is different from, for example orthogonal to, the
first polarization.
- 5. Radar device (1) according to one of the preceding embodiments,
wherein the first antenna element (213) and the second antenna element 223) are serially
coupled to the signal port (130, 131, 133, 135, 136, 137) of the radar circuit (100)
via a common signal line (205) and
wherein the second antenna element (223) is resonant in the second frequency band
(34) and not in the first frequency band (31),
and the first antenna element (213) is resonant at least in the first frequency band
(31).
- 6. Radar device (1) according to one of embodiments 1 to 4,
wherein the first antenna element (213) and the second antenna element (223) are coupled
to the signal port (130, 131, 133, 135, 136, 137) of the radar circuit (100) in parallel
via a signal routing device (230) of the antenna device (200),
wherein the signal routing device (230) is configured to split the radar signal (10,
15, 20, 25) into the first signal portion (11, 16, 21, 26) and the second signal portion
(12, 17, 22, 27) and to selectively route the first signal portion (11, 16, 21, 26)
between the common signal port (130, 131, 133, 135, 136, 137) and the first antenna
element (213) and not between the common signal port (130, 131, 133, 135, 136, 137)
and the second antenna element (223) and to route the second signal portion (12, 17,
22, 27) at least between the common signal port (130, 131, 133, 135, 136, 137) and
the second antenna element (223).
- 7. Radar device (1) according to embodiment 6,
wherein the signal routing device (230) is configured as a switching device that is
configured to alternately conductively couple a first port (231) that is coupled to
the first antenna element (213) or a second port (232) that is coupled to the second
antenna element (223) to the common signal port (130, 131, 133, 135, 136, 137) of
the radar circuit (100).
- 8. Radar device (1) according to embodiment 6,
wherein the signal routing device (230) is configured as a frequency selective device,
for example as a frequency selective multiplexer, having a first port (231) that is
coupled to the first antenna element (213), a second port (232) that is coupled to
the second antenna element (223) and a frequency selective section that couples the
first and the second port (231, 232) to the common signal port (130, 131, 133, 135,
136, 137) of the radar circuit (100).
- 9. Radar device (1) according to one of the preceding embodiments,
wherein the radar circuit (100) comprises an integrated circuit and the common signal
port (130, 131, 133, 135, 136, 137) is configured as an external connection point
of the integrated circuit.
- 10. Radar device (1) according to one of the preceding embodiments,
wherein a phase center (301) of the first antenna (211) and a phase center (302) of
the second antenna (221) are positioned at the same location on the antenna device
(200).
- 11. Radar device (1) according to one of embodiments 1 to 9,
wherein a phase center (301) of the first antenna (211) and a phase center (302) of
the second antenna (221) are positioned at different locations on the antenna device
(200).
- 12. Radar device (1) according to one of the preceding embodiments,
wherein the first antenna (211) comprising the first antenna element (213) is part
of a first set (210) of antennas that transduce in the first frequency band (31) and
are displaced with respect to each other along a first direction (201),
wherein the second antenna (221) comprising the second antenna element (223) is part
of a second set (220) of antennas that transduce in the second frequency band (34)
and are displaced with respect to each other along a second direction (202),
wherein the signal processing device (120) is configured to process individual first
radar signals transduced via the first set (210) of antennas to form a first virtual
array of antennas that resolves targets along the first direction (201),
wherein the signal processing device (120) is configured to process individual second
radar signals transduced via the second set (220) of antennas to form a second virtual
array (255) of antennas that resolves targets along the second direction (202).
- 13. Radar device (1) according to one of the preceding embodiments,
wherein the first antenna (211) comprising the first antenna element (213) has a first
field of view (240), the first field of view (240) having a first extent (241) along
a lateral direction (203),
wherein the second antenna (221) comprising the second antenna element (223) has a
second field of view (242), the second field of view (242) having a second extent
(243) along the lateral direction (203),
wherein the first extent (241) is larger than the second extent (243).
- 14. Radar device (1) according to embodiment 13,
wherein the first antenna (211) does not comprise the second antenna element (223),
and wherein the second antenna (221) comprises the second antenna element (223) and
the first antenna element (213).
- 15. Method (400) for operating a radar device (1) for automotive applications,
the radar device (1) comprising a radar circuit (100) and an antenna device (200)
having a first antenna element (213) that is part of a first antenna (211) and a second
antenna element (223) that is part of a second antenna (221), the first and second
antenna element (213, 223) being both coupled to a common signal port (130, 131, 133,
135, 136, 137) of the radar circuit (100),
the method (400) comprising:
- generating (405) a radar signal (10, 15, 20, 25) having a first signal portion (11,
16, 21, 26) and a second signal portion (12, 17, 22, 27),
wherein the first signal portion (11, 16, 21, 26) occupies a first frequency band
(31) and the second signal portion (12, 17, 22, 27) occupies a second frequency band
(34) that is separate from the first frequency band (31);
- routing (410, 425) both the first signal portion (11, 16, 21, 26) and the second signal
portion (12, 17, 22, 27) via the common signal port (130, 131, 133, 135, 136, 137)
between the radar circuit (100) and the antenna device (200); and
- transducing (415, 420) the first signal portion (11, 16, 21, 26) via the first antenna
element (213) and not via the second antenna element (223) and the second signal portion
(12, 17, 22, 27) at least via the second antenna element (223),
- detecting (440) from the first signal portion (11, 16, 21, 26) target reflections
via a first propagation channel (70) and detecting (440) from the second signal portion
(12, 17, 22, 27) target reflections via a second propagation channel (71).
Reference numeral list
[0214]
- 1
- radar device
- 3
- target object
- 4
- further target object
- 5
- additional target object
- 10
- first transmit radar signal
- 11
- first signal portion
- 12
- second signal portion
- 13
- third signal portion
- 15
- second transmit radar signal
- 16
- first signal portion
- 17
- second signal portion
- 20
- first receive radar signal
- 21
- first signal portion
- 22
- second signal portion
- 25
- second receive radar signal
- 26
- first signal portion
- 27
- second signal portion
- 30
- frequency
- 31
- first frequency band
- 32
- first minimum frequency
- 33
- first maximum frequency
- 34
- second frequency band
- 35
- second minimum frequency
- 36
- second maximum frequency
- 37
- third frequency band
- 38
- third minimum frequency
- 39
- third maximum frequency
- 42
- minimum transmission
- 51
- first transmission
- 52
- second transmission
- 60
- time
- 70
- first propagation channel
- 71
- second propagation channel
- 72
- third propagation channel
- 73
- fourth propagation channel
- 74
- fifth propagation channel
- 75
- sixth propagation channel
- 76
- seventh propagation channel
- 76
- eighth propagation channel
- 100
- radar circuit
- 102
- control line
- 105
- signal generator
- 110
- signal receiver
- 120
- signal processing device
- 121
- first control signal
- 122
- second control signal
- 123
- first radar data signal
- 124
- second radar data signal
- 125
- first transmit chain
- 126
- second transmit chain
- 127
- first receive chain
- 128
- second receive chain
- 130
- first transmit port
- 131
- second transmit port
- 133
- further transmit port
- 135
- first receive port
- 136
- second receive port
- 137
- further receive port
- 140
- splitting module
- 142
- ranging module
- 144
- first evaluation module
- 145
- second evaluation module
- 151
- mixing module
- 152
- intermediate signal
- 154
- measurement module
- 200
- antenna device
- 201
- first direction
- 202
- second direction
- 203
- lateral direction
- 204
- common signal port
- 205
- signal line
- 206
- first polarization direction
- 207
- second polarization direction
- 210
- first set of antennas
- 211
- first antenna
- 213
- first antenna elements
- 218
- common antenna
- 219
- further second antenna
- 220
- second set of antennas
- 221
- second antenna
- 222
- additional antenna elements
- 223
- second antenna elements
- 228
- third antenna elements
- 229
- third antenna
- 230
- signal routing device
- 231
- first port
- 232
- second port
- 233
- further port
- 235
- frequency selective section
- 236
- first line segment
- 237
- second line segment
- 238
- first filter
- 239
- second filter
- 240
- first field of view
- 241
- first extent
- 242
- second field of view
- 243
- second extent
- 271
- first transmit distance
- 272
- second transmit distance
- 273
- first receive distance
- 274
- second receive distance
- 275
- third receive distance
- 281
- first filter
- 282
- second filter
- 283
- further filter
- 285
- filter element
- 286
- further filter element
- 301
- first phase center
- 302
- second phase center
- 303
- third phase center
- 305
- first antenna distance
- 306
- second antenna distance
- 310
- first filter
- 311
- second filter
- 315
- first set of antenna elements
- 317
- second set of antenna elements
- 318
- third set of antenna elements
- 400
- method
- 405
- generating radar signal
- 410
- routing radar signal from radar circuit to antenna device
- 415
- transmitting radar signal
- 420
- receiving radar signal
- 425
- routing radar signal from antenna device to radar circuit
- 430
- generating data signals
- 440
- differentiating propagation channels
- 445
- joint processing of first and second antenna signals
- 500
- vehicle
- 501
- radiation field
- 502
- vehicle control system
- 504
- vehicle control device